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Support & service (170)- AN-V-162AN-V-162Iron in deoxidation solution (oxalate method)
The concentration of Fe(total) is determined by polarography in oxalate buffer pH 2. This method is suitable for iron concentrations in the mg/L range.
- AN-V-163AN-V-163Iron in degreasing bath
The concentration of Fe(total) is determined by polarography in an alkaline electrolyte containing triethanolamine (TEA) and KBrO3. All reagents typically contain iron impurities. Therefore a subtraction of the reagent blank is recommended.
- AN-V-164AN-V-164Titan in a titan pickle bath
The concentration of Ti in a Ti pickle bath is determined by polarography in an oxalic acid electrolyte.
- AN-V-165AN-V-165Zinc in phosphatation bath
The concentration of Zn in a zinc phosphatation bath is determined by polarography in ammonia buffer pH 9.3.
- AN-V-166AN-V-166Nickel in phosphatation bath
The concentration of Ni in a Zn phosphatation bath is determined by polarography in ammonia buffer pH 9.3.
- AN-V-167AN-V-167Cadmium in phosphatation bath
The concentration of Cd in a Zn phosphatation bath is determined by polarography in HCl electrolyte.
- AN-V-168AN-V-168Lead in phosphatation bath
The concentration of Pb in a Zn phosphatation bath is determined by anodic stripping voltammetry (ASV) in HCl electrolyte.
- AN-V-169AN-V-169Lead in tin soldering contacts
The concentration of Pb in Sn soldering contacts is determined by anodic stripping voltammetry (ASV) in an electrolyte containing citrate, oxalic acid, HCl, and cetyl trimethyl ammonium bromide.
- AN-V-170AN-V-170Selenium in zinc plant electrolyte
The concentration of Se(IV) in zinc plant electrolyte is determined by cathodic stripping voltammetry (CSV) in ammonium sulfate electrolyte containing EDTA and Cu. The Cu concentration has to be adapted to the sample and the deposition time. With voltammetry only free selenium is determined, therefore it has to be taken into consideration that selenium forms sparingly soluble compounds with numerous cations (e.g. Fe2(SeO3 )3 with Ks = 2·10-31).
- AN-V-171AN-V-171Tellurium in zinc plant electrolyte
The concentration of Te(IV) in Zn plant electrolyte is determined by cathodic stripping voltammetry (CSV) in ammonium sulfate electrolyte containing EDTA and Cu. To get a proper complexation of the interfering Zn a high amount of EDTA is necessary at pH 3.4.
- AN-V-172AN-V-172Cobalt in zinc plant electrolyte with a furildioxime as complexing agent
The concentration of Co in zinc plant electrolyte (neutral zinc sulfate solution) is determined by adsorptive stripping voltammetry (AdSV) in ammonia buffer with α-furildioxime as complexing agent.
- AN-V-173AN-V-173Lead in zinc sulfate solution
The concentration of Pb in zinc sulfate solution is determined by anodic stripping voltammetry (ASV) in hydrochloric acid electrolyte.
- AN-V-174AN-V-174Arsenic in zinc plant electrolyte
The concentration of As(total) in zinc plant electrolyte is determined by anodic stripping voltammetry (ASV) on a lateral gold electrode in HCl electrolyte. Due to the high excess of zinc in the sample the deposition potential has to be adapted. A second potential approx. 100 mV more negative than the arsenic signal has to be applied to selectively oxidize interfering antimony. For sample preparation the sample was passed through a cation exchange column to reduce the concentration of zinc in the measuring solution.
- AN-V-175AN-V-175Antimony(III) in zinc plant electrolyte with chloranilic acid as complexing agent
The concentration of of Sb(III) in zinc plant electrolyte is determined by adsorptive stripping voltammetry (AdSV) with chloranilic acid as complexing agent. In this method high copper concentrations do not interfere. An approx. 10-fold excess of lead interferes, since it shows a signal close to the antimony. With the parameters given below the working range of this method is 1 - 30 µg/L antimony(III) with respect to the concentration in the measuring vessel.
- AN-V-176AN-V-176Total selenium in drinking water after reduction of Se(VI) to Se(IV) with the 909 UV Digester
The Se(IV) concentration can be determined by cathodic Stripping Voltammetry (CSV) in an ammonium sulfate electrolyte. The analysis also functions in the presence of Cu. Se(IV) is determined in the first step. In order to register the entire content of Se, Se(VI) species are first reduced to Se(IV). This is handled by the 909 UV Digester at a pH value of between 7 and 9. The method requires practically no reagents and permits selenium speciation.
- AN-V-177AN-V-177Iron in a chromium bath (triethanolamine-bromate-method)
The concentration of Fe(total) is determined by polarography in alkaline electrolyte containing triethanolamine (TEA) and KBrO3. All reagents typically contain Fe impurities. Therefore a subtraction of the reagent blank is recommended.
- AN-V-178AN-V-178Copper in seawater with the Mercury Film Electrode (MFE)
The concentration of Cu in seawater is determined by anodic stripping voltammetry (ASV) in acetate buffer on a mercury film electrode (MFE). Gallium is added to overcome zinc interferences.
- AN-V-179Iron in boiler feed water
The iron concentration in boiler feed water has to be monitored to ensure reliable and safe operation of the water-steam circuit. Various guidelines set limits for the maximum iron content.The concentration of total iron in boiler feed water can be determined with high sensitivity using adsorptive stripping voltammetry (AdSV) using 2,3- dihydroxynaphthalene (DHN) as complexing agent. Voltammetry is a viable, less sophisticated alternative to atomic absorption spectroscopy (AAS) or inductive couple plasma (ICP) for the determination of iron with only a moderate investment in hardware required and low running costs.
- AN-V-180AN-V-180Nitrobenzene in aniline
The concentration of nitrobenzene in aniline is determined by polarography in an ethanol / acetic acid electrolyte.
- AN-V-181AN-V-181Chromium(VI) in cement
The concentration of Cr(VI) in cement is determined in tartrate electrolyte after acid extraction of the sample.
- AN-V-182AN-V-182Suppressor «Top Lucina a-M» (Okuno Chemical Industries) in acid copper bath
Determination of suppressor «Top Lucina α-M» in acid copper baths by dilution titration (DT) using cyclic voltammetric stripping (CVS).
- AN-V-183AN-V-183Brightener «Top Lucina a-2» (Okuno Chemical Industries) in acid Cu bath
Determination of brightener «Top Lucina α-2» in acid copper baths by modified linear approximation technique (MLAT) using cyclic voltammetric stripping (CVS).
- AN-V-184AN-V-184Leveler «Top Lucina a-3» (Okuno Chemical Industries) in acid Cu bath
Determination of leveler «Top Lucina α-3» in acid copper baths by response curve technique (RC) using cyclic voltammetric stripping (CVS).
- AN-V-185AN-V-185Cadmium and lead in electronic components as part of electrotechnical products
The EU directive on «Restriction of Hazardous Substances» (RoHS) requires the testing of four regulated heavy metals (Pb, Hg, Cd, Cr(VI)) in electrotechnical products. After sample preparation according to IEC 62321 the determination of lead and cadmium in electronic components can be carried out by anodic stripping voltammetry (ASV) using ammonium oxalate buffer pH 2.
- AN-V-186AN-V-186Chromium(VI) in electronic components as part of electrotechnical products
The EU directive on «Restriction of Hazardous Substances» (RoHS) requires the testing of four regulated heavy metals (Pb, Hg, Cd, Cr(VI)) in electrotechnical products. After sample preparation according to IEC 62321 the determination of chromium(VI) in electronic components can be carried out by polarography in ammonia buffer pH 9.6.
- AN-V-187AN-V-187Mercury in electronic components as part of electrotechnical products
The EU directive on «Restriction of Hazardous Substances» (RoHS) requires the testing of four regulated heavy metals (Pb, Hg, Cd, Cr(VI)) in electrotechnical products. After sample preparation according to IEC 62321 the determination of mercury in electronic components can be carried out by anodic stripping voltammetry (ASV) at a gold rotating disk electrode (Au-RDE).
- AN-V-188AN-V-188Cadmium and lead in polymer materials as part of electrotechnical products
The EU directive on «Restriction of Hazardous Substances» (RoHS) requires the testing of four regulated heavy metals (Pb, Hg, Cd, Cr(VI)) in electrotechnical products. After sample preparation according to IEC 62321 the determination of lead and cadmium in polymer materials can be carried out by anodic stripping voltammetry (ASV) using ammonium oxalate buffer pH 2.
- AN-V-189AN-V-189Chromium(VI) in polymer materials as part of electrotechnical products
The EU directive on «Restriction of Hazardous Substances» (RoHS) requires the testing of four regulated heavy metals (Pb, Hg, Cd, Cr(VI)) in electrotechnical products. After sample preparation according to IEC 62321 the determination of chromium(VI) in polymer materials can be carried out by polarography in ammonia buffer pH 9.6.
- AN-V-190AN-V-190Mercury in polymer materials as part of electrotechnical products
The EU directive on «Restriction of Hazardous Substances» (RoHS) requires the testing of four regulatedheavy metals (Pb, Hg, Cd, Cr(VI)) in electrotechnical products. After sample preparation according to IEC62321 the determination of mercury in polymer materials can be carried out by anodic stripping voltammetry (ASV)at a gold rotating disk electrode (Au-RDE).
- AN-V-191AN-V-191Cadmium and lead in metallic materials as part of electrotechnical products
The EU directive on «Restriction of Hazardous Substances» (RoHS) requires the testing of four regulated heavy metals (Pb, Hg, Cd, Cr(VI)) in electrotechnical products. After sample preparation according to IEC 62321 the determination of lead and cadmium in metallic materials can be carried out by anodic stripping voltammetry (ASV) using ammonium oxalate buffer pH 2.
- AN-V-192AN-V-192Chromium(VI) in chromate coating on metallic materials as part of electrotechnical products
The EU directive on «Restriction of Hazardous Substances» (RoHS) requires the testing of four regulated heavy metals (Pb, Hg, Cd, Cr(VI)) in electrotechnical products. After sample preparation according to IEC 62321 the determination of chromium(VI) in chromate coating on metallic materials can be carried out by adsorptive stripping voltammetry (AdSV) using DTPA (diethylenetriamine pentaacetic acid) as complexing agent.
- AN-V-193AN-V-193Mercury in metallic materials as part of electrotechnical products
The EU directive on «Restriction of Hazardous Substances» (RoHS) requires the testing of four regulated heavy metals (Pb, Hg, Cd, Cr(VI)) in electrotechnical products. After sample preparation according to IEC 62321 the determination of mercury in metallic materials can be carried out by anodic stripping voltammetry (ASV) at a gold rotating disk electrode (Au-RDE).
- AN-V-194AN-V-194Copper in ethanol and fuel ethanol (E85) for car engines
The presence of copper in fuel ethanol blends has gained considerable attention since Cu2+ catalyzes oxidative reactions in gasoline leading to olefin decomposition and gum formation. Cu2+ in ethanol can easily be determined using anodic stripping voltammetry (ASV) in ethanol/gasoline blends without any sample pretreatment.
- AN-V-195Iodate in electroless nickel baths
Electroless nickel plating is an important and well established process in the surface finishing industry. In the past, the addition of small amounts of lead has widely been used to stabilize the plating bath. With the increasing number of restrictions in recent years on the use of lead in consumber products, particularly electronics, alternative stabilizers were developed and introduced. One of the stabilizers used as lead replacement is iodate. It can be used as a single additive or in combination with bismuth or antimony. This method allows the determination of iodate directly in the plating bath sample by polarography. The method is simple and fast, however, sensitive and robust.
- AN-V-196Antimony and bismuth in electroless nickel baths
Electroless nickel plating is an important and well established process in the surface finishing industry. In the past the addition of small amounts of lead has widely been used to stabilize the plating bath. With the increasing number of restrictions in recent years on the use of lead in consumber products, particularly electronics, alternative stabilizers were developed and introduced. Two of the stabilizers used as lead replacement are antimony and bismuth. They can be used as a single additive or in combination with each other or iodate. This method allows the determination of antimony and bismuth directly in the plating bath sample by anodic stripping voltammetry (ASV). The method is simple and fast, however sensitive and robust
- AN-V-197Indirect determination of iodide in brine with stripping voltammetry
It is crucial to monitor iodide in NaCl brine to prevent membrane fouling during chlor-alkali electrolysis. Stripping voltammetry offers precise iodide analysis.
- AN-V-198AN-V-198Aluminum in drinking water by adsorptive stripping voltammetry using alizarin red S (DASA) as complexing agent
Aluminum can be determined in drinking water by adsorptive stripping voltammetry at the HMDE using alizarin red S (DASA) as complexing agent. The method is linear up to 35 μg/L. The detection limit for this method is β(Al) = 1 μg/L, the limit of quantification is β(Al) = 3 μg/L. The sensitivity of the method cannot be increased by deposition.
- AN-V-199Voltammetric determination of gold(I) in gold plating baths
Controlling Au(I) levels in gold plating baths is required for high quality. Voltammetric analysis with the Multi-Mode Electrode Pro is an efficient solution.
- AN-V-200Determination of thiourea in copper electrorefining solutions
Thiourea measurement during copper electrorefining can be complicated by high chloride levels. Voltammetric analysis overcomes this issue, improving copper quality.
- AN-V-201AN-V-201Nickel and cobalt in red wine after UV digestion
The determination of nickel and cobalt in red wine using adsorptive stripping voltammetry can be carried out after UV digestion of the sample.
- AN-V-202AN-V-202Determination of suppressor in acid copper baths by smartDT
The determination of suppressor with dilution titration (DT) involves numerous additions with standard solution or sample to reach the evaluation ratio. Usually fixed, equidistant addition volumes are used. With smartDT, variable addition volumes are used that are automatically calculated by the software. At the beginning, the volumes are bigger. Towards the evaluation ratio, the addition volume becomes smaller to guarantee a good accuracy of the result. The operator defines the first and the smallest addition volume to be used. All volumes in between are calculated by the software considering the progress of the determination. Using smartDT with intelligent addition volumes, the determination of suppressor can be significantly accelerated with the same or even better accuracy than with the classic DT. The time saving per determination is between 20 and 40%.
- AN-V-203AN-V-203Determination of copper in electrolyte solutions for production of CIGS solar cells
This Application Note describes the polarograhic determination of copper in electroplating baths used in the production of thin-film copper indium gallium diselenide solar cells (CIGS cells). The CIGS absorber layer is electrodeposited on a molybdenum-coated substrate.Copper analysis is carried out after dilution of the sample with sulfuric acid as supporting electrolyte.
- AN-V-204AN-V-204Determination of indium in electrolyte solutions for production of CIGS solar cells
This Application Note describes the polarographic determination of indium in electroplating baths used in the production of copper indium gallium diselenide thin-film solar cells (CIGS cells). The CIGS absorber layer is electrodeposited on the molybdenum-coated substrate. Indium analysis is carried out after dilution of the bath sample with sulfuric acid as supporting electrolyte.
- AN-V-205AN-V-205Determination of gallium in electrolyte solutions for production of CIGS solar cells
This Application Note describes the determination of gallium in electroplating baths used in the production of copper indium gallium diselenide thin-film solar cells (CIGS cells). The CIGS absorber layer is electrodeposited on a molybdenum-coated substrate. Gallium analysis using anodic stripping voltammetry (ASV) is carried out after dilution of the sample with sulfuric acid as supporting electrolyte.
- AN-V-206AN-V-206Determination of selenite in electrolyte solutions for production of CIGS solar cells
This Application Note describes the polarographic determination of selenite in electroplating baths used in the production of copper indium gallium diselenide thin-film solar cells (CIGS cells). The CIGS absorber layer is electrodeposited on a molybdenum-coated substrate. Selenite analysis is carried out after dilution of the sample with sulfuric acid as supporting electrolyte.
- AN-V-207AN-V-207Determination of cadmium in electrolyte solutions for production of CIS and CIGS solar cells
This Application Note describes the polarographic determination of cadmium in electroplating baths used in the production of copper indium gallium diselenide (CIGS) or copper indium diselenide thin-film solar cells (CIS). Cadmium sulfide (CdS) from the electrolyte solution is deposited as a thin film on the CIS or CIGS absorber layer via chemical bath deposition (CBD).
- AN-V-208AN-V-208Determination of thiourea in electrolytes for production of CIS and CIGS solar cells
This Application Note describes the polarographic determination of thiourea in electroplating baths used in the production of copper indium gallium diselenide (CIGS) or copper indium diselenide thin-film solar cells (CIS). Cadmium sulfide (CdS) from the electrolyte solution is deposited as a thin film on the CIS or CIGS absorber layer via chemical bath deposition (CBD).
- AN-V-209Carbonyl test methods for alcohols
This polarographic method uses the Multi-Mode Electrode Pro for simultaneous detection of carbonyl impurities in alcohols, ensuring high product quality and stability.
- AN-V-210Total arsenic in mineral water
Arsenic is ubiquitous in the earth’s crust in low concentrations. Elevated levels can be found in mineral deposits and ores. Arsenic from such deposits leaches into the groundwater in the form of arsenite (AsO33–) and arsenate (AsO43–), causing its contamination. In addition to the arsenic originating from natural sources, industry and agriculture contribute to the contamination to a lower extent. The guideline value for inorganic total arsenic in the World Health Organization’s «Guidelines for Drinking-water Quality» is set to 10 μg/L. With a limit of detection (LOD) of 0.9 μg/L, anodic stripping voltammetry is a viable, less sophisticated alternative to atomic absorption spectroscopy (AAS) for the determination of arsenic. While AAS (and competing methods) can only be performed in a laboratory, anodic stripping voltammetry can be used conventionally in the laboratory or alternatively in the field using the 946 Portable VA Analyzer. The determination is carried out on the scTRACE Gold electrode.
- AN-V-211Arsenic(III) in mineral water
Arsenic is ubiquitous in the earth’s crust in low concentrations. Elevated levels can be found in mineral deposits and ores. Arsenic from such deposits leaches into the groundwater in the form of arsenite (AsO33–) and arsenate (AsO43–), causing its contamination. As(III) is more toxic than As(V) and shows higher mobility in the environment. The selective determination of this species is possible using the method described in this document.With a limit of detection (LOD) of 0.3 μg/L, anodic stripping voltammetry allows speciation, i.e. the specific determination of As(III). While atomic absorption spectroscopy (AAS) (and competing methods) can only determine the total element concentration, anodic stripping voltammetry is selective to the As(III) oxidation state. The determination is carried out on the scTRACE Gold electrode.
- AN-V-212Mercury in mineral water
Mercury and its compounds are toxic. The highest risk is posed by chronic poisoning with mercury compounds ingested with food. A significant part of the mercury present in the environment is of anthropogenic origin. Considerable sources are coal-fired power plants, steel, and nonferrous metal production, waste incineration plants, the chemical industry, or artisanal gold mining where the use of elemental mercury for the extraction of gold from the ore is still common. The guideline value for inorganic mercury in the World Health Organization’s «Guidelines for Drinking-water Quality» is set to 6 μg/L.With a limit of detection (LOD) of 0.5 μg/L, anodic stripping voltammetry is a viable, less sophisticated alternative to atomic absorption spectroscopy (AAS).While AAS (and competing methods) can only be performed in a laboratory, anodic stripping voltammetry can be used conventionally in the laboratory or alternatively in the field with the 946 Portable VA Analyzer. The determination is carried out on the scTRACE Gold electrode.
- AN-V-213Copper in drinking water
Higher levels of copper in drinking water are usually caused by corrosive action of water leaching copper from copper pipes. While copper is an essential nutrient for the human organism, ingestion of higher concentrations have an adverse effect on human health. The current World Health Organization’s «Guidelines for Drinking-water Quality» recommend a maximum concentration of 2000 μg/L. With a limit of detection (LOD) of 0.5 μg/L, anodic stripping voltammetry is a viable, less sophisticated alternative to atomic absorption spectroscopy (AAS) for the determination of copper in drinking water. While AAS (and competing methods) can only be performed in a laboratory, anodic stripping voltammetry can be used conventionally in the laboratory or alternatively in the field with the 946 Portable VA Analyzer. The determination is carried out on the scTRACE Gold electrode.
- AN-V-214Lead in drinking water
Lead is known to be highly toxic to humans as it interferes with enzyme reactions. Chronic lead poisoning can be caused by lead leaching into drinking water from piping systems. The current provisional guideline value in the World Health Organization’s «Guidelines for Drinking-water Quality» sets a maximum concentration of 10 μg/L. With a limit of detection (LOD) of 0.2 μg/L, anodic stripping voltammetry is a viable, less sophisticated alternative to atomic absorption spectroscopy (AAS) to determine lead in drinking water. While AAS (and competing methods) can only be performed in a laboratory, anodic stripping voltammetry can be used conventionally in the laboratory or alternatively in the field with the 946 Portable VA Analyzer. The determination is carried out on a silver film applied to the scTRACE Gold electrode.
- AN-V-215Zinc in drinking water with the scTRACE Gold
Zinc is an essential trace element for humans. Excessive intake of zinc in higher concentrations can be harmful, however. There is no guideline value for zinc in the World Health Organization’s «Guidelines for Drinking-water Quality» because typical levels usually found in drinking water are of no concern. Anodic stripping voltammetry is a viable, less sophisticated alternative to atomic absorption spectroscopy (AAS) for the determination of zinc in drinking water. While AAS (and competing methods) can only be performed in a laboratory, anodic stripping voltammetric determinations can be used conventionally in the laboratory or alternatively in the field using with 946 Portable VA Analyzer. The determination is carried out on the scTRACE Gold electrode.
- AN-V-216Iron in drinking water
Iron is an essential element in human nutrition. It can be present in drinking water as a result of water treatment or from corrosion in the water piping system. There is no guideline value for iron in the World Health Organization’s «Guidelines for Drinking-water Quality» because typical levels usually found in drinking water are of no concern. However, there are national limit values in various countries. The European Union has set a guideline indicator value for iron of 200 μg/L. Voltammetry is a viable, less sophisticated alternative to atomic absorption spectroscopy (AAS) for the determination of iron in drinking water. While AAS (and competing methods) can only be performed in a laboratory, anodic stripping voltammetric determinations can be done used conventionally in the laboratory or alternatively in the field using the with 946 Portable VA Analyzer. The determination is carried out with adsorptive stripping voltammetry (AdSV) using 2,3-dihydroxynaphthalene (DHN) on the scTRACE Gold electrode.
- AN-V-217Nickel, cobalt in drinking water
Nickel is widely used in stainless steel production. At high enough concentrations, it is known to cause allergic reactions when in contact with skin. Drinking water may be contaminated by taps which are made from metals containing nickel. The guideline value for nickel in the World Health Organization’s «Guidelines for Drinking-water Quality» is set to 70 μg/L. National limit values of typically lower at e. g. 20 μg/L. Cobalt usually occurs associated with nickel and can be found in smaller concentrations besides nickel. Adsorptive stripping voltammetry is a viable, less sophisticated alternative to atomic absorption spectroscopy (AAS) for the determination of nickel and cobalt in drinking water. While AAS (and competing methods) can only be performed in a laboratory, adsorptive stripping voltammetric determinations can be used in the laboratory or alternatively in the field with the 946 Portable VA Analyzer. The determination is carried out on a bismuth film applied to the scTRACE Gold electrode.
- AN-V-218Bismuth in drinking water
Bismuth is considered as a metal with a very low toxicity. In high concentrations toxic effects have been described, however. There is no guideline value for bismuth in the World Health Organization’s «Guidelines for Drinking-water Quality» because typical levels usually found in drinking water are of no concern. Anodic stripping voltammetry is a viable, less sophisticated alternative to atomic absorption spectroscopy (AAS) for the determination of bismuth in drinking water. While AAS (and competing methods) can only be performed in a laboratory, anodic stripping voltammetry can be used in the laboratory or alternatively in the field with the 946 Portable VA Analyzer. The determination is carried out on the scTRACE Gold electrode.
- AN-V-219Sn(II) in radiopharmaceuticals
Sodium pertechnetate (99mTc) radiopharmaceuticals are widely used in medical imaging diagnostic procedures to help diagnose a large number of diseases affecting the bones and major organs. These radiopharmaceuticals are usually prepared from cold kits consisting of several ingredients, including a reducing agent. Sn(II) is a typical reducing agent which reduces the Tc(VII) that is added to the cold kit to a lower oxidation state which then forms the stable organic complex.For quality control, the tin content has to be determined in the kit vial. Sn(II) can be selectively determined using differential pulse polarography. Polarography is a straightforward, sensitive, selective, and interference-free method for the determination of mg/L levels of Sn(II) in radiopharmaceuticals.
- AN-V-220Remaining Useful Life of lubricants
Testing of in-service lubricating oils for their remaining antioxidant content is critical for capital equipment uptime as well as reducing running costs and repair expenses. Test methodologies such as RPVOT (rotating pressure vessel oxidation test) are time consuming and expensive to perform. Remaining Useful Life is a proven voltammetric method for testing the remaining active antioxidant content in minutes. Depending on the electrolyte, aromatic amine and phenolic antioxidants or hindered phenolic antioxidants can be determined.For the first time, a fully automated system is demonstrated, showing dramatically improved repeatability of data for confidence in reporting. Operator time is saved during sample preparation and irreproducible manual interpretation is eliminated via completely autonomous software processing. The user adds the sample into the vials, then the determination process of the sample series (including sample preparation and result calculations) is carried out automatically. The system is based on methods ASTM D6810, ASTM D6971, ASTM D7527, and ASTM D7590.
- AN-V-221Cadmium and lead in drinking water with a Bi drop electrode
To reduce the toxic effects of cadmium on the human body, as well as to limit the neurotoxic effects of lead, the provisional guideline values in the World Health Organization’s «Guidelines for Drinking-water Quality» are set to a maximum concentration of 3 µg/L for cadmium and 10 µg/L for lead. The completely mercury-free Bi drop electrode takes the next step towards converting voltammetric analysis into a non-toxic approach for heavy metal detection. Using this environmentally friendly sensor for anodic stripping voltammetry (ASV) allows the simultaneous determination of Cd and Pb in drinking water. The outstanding sensitivity is more than sufficient to monitor the provisional WHO guideline values.
- AN-V-222Iron determination in drinking water
The presence of iron in drinking water can lead to an unpleasant taste, stains, or even growth of «iron bacteria» that can clog plumbing and cause an offensive odor. Over a longer period, the formation of insoluble iron deposits is problematic in many industrial and agricultural applications. To avoid these problems, the U.S. Environmental Protection Agency (EPA) defines the Secondary Maximum Contaminant Level (SMCL) for water treatment and processing plants as 0.3 mg/L Fe in drinking water.The voltammetric determination of the iron triethanolamine complex on the non-toxic Bi drop electrode allows both the detection at very low levels (limit of detection of 0.005 mg/L) and measurements in a wide range of concentrations up to 0.5 mg/L.
- AN-V-223Nickel and cobalt in drinking water with a Bi drop electrode
The main sources of nickel pollution are electroplating, metallurgical operations, or leaching from pipes and fittings. Catalysts for the petroleum and chemical industries are major application fields for cobalt. In both cases, the metal is either released directly, or via the waste water-river pathway into the drinking water system. Therefore in the EU the legislation specifies 20 µg/L as the limit value for the Ni concentration in drinking water.The simultaneous and straightforward determination of nickel and cobalt is based on adsorptive stripping voltammetry (AdSV). The unique properties of the non-toxic Bi drop electrode combined with AdSV results in an excellent performance in terms of sensitivity.
- AN-V-224Nickel and cobalt in drinking water with a glassy carbon electrode
Due to the toxicity and the detrimental effects of nickel and cobalt on human health, their concentrations in drinking water must be controlled. Therefore, EU the legislation specifies 20 µg/L as the limit value for nickel in drinking water. The current provisional guideline value for Ni in the World Health Organization’s «Guidelines for Drinking-water Quality» is set to a maximum concentration of 70 µg/L. To monitor the concentrations of Ni and Co with the 884 Professional VA, a method for simultaneous determination on the glassy carbon electrode (GC-RDE) modified with a Bi film is used.
- AN-V-225Cadmium and lead in drinking water with a glassy carbon electrode
To reduce the toxic effects of cadmium on the kidneys, skeleton, and the respiratory system, as well as the neurotoxic effects of lead, the provisional guideline values in the World Health Organization’s (WHO) «Guidelines for Drinking-water Quality» are set to a maximum concentration of 3 µg/L for cadmium and 10 µg/L for lead.The powerful anodic stripping voltammetry (ASV) technique on the ex-situ mercury film modified glassy carbon electrode is more than sufficient to monitor the proposed WHO guidelines for Cd and Pb in drinking water.
- AN-V-226Zinc in drinking water with a glassy carbon electrode
No health-based guideline value exists for zinc. However, to maintain good quality municipal drinking water, the United States Environmental Protection Agency (US-EPA) set a maximum concentration of 5 mg/L as the limit value. Typical concentrations in surface and ground waters are between 10–40 μg/L Zn, with values up to 1 mg/L in tap water. Anodic stripping voltammetry (ASV) on the ex-situ mercury film modified glassy carbon electrode provides a less complex alternative to atomic absorption spectroscopy (AAS) for zinc determination in drinking water.
- AN-V-227Chromium(VI) in drinking water with a glassy carbon electrode
The guideline value for chromium in the World Health Organization’s (WHO) «Guidelines for Drinking-water Quality» is 50 µg/L. It should be noted here that chromium concentrations are often expressed as total chromium and not as chromium(III) or (VI). Chromium(VI) is responsible for changes in genetic material, and is found in significantly lower concentrations than Cr(III). Therefore an extremely sensitive method is required to monitor Cr(VI) in drinking water.The powerful adsorptive stripping voltammetry (AdSV) technique on the ex-situ mercury film modified glassy carbon electrode using DTPA as complexing agent can be used to determine such low concentrations.
- AN-V-228Thallium in drinking water
Presence of thallium in surface water is an indicator of industrial effluents and poses a serious health hazard if imbibed. Monitoring of thallium concentration can easily be done with anodic stripping voltammetry on the silver film modified scTRACE Gold. This non-toxic method allows the determination of thallium concentrations between 10–250 µg/L and can be carried out with the 946 Portable VA Analyzer.
- AN-V-229Antimony(III) in drinking water
The toxicity of antimony depends on its oxidation state: antimony(III) is more toxic than antimony(V). Due to its carcinogenicity, EU legislation specifies 5 µg/L and the World Health Organization (WHO) sets a maximum concentration of 20 µg/L as the Sb(III) limit value in drinking water.Straightforward determination using anodic stripping voltammetry provides a fast (analysis time under 10 minutes) and an ultra-sensitive tool for monitoring the antimony(III) concentration in drinking water. Measurements can be performed in the laboratory with the 884 Professional VA, or alternatively in the field with the 946 Portable VA Analyzer.
- AN-V-230Chromium(VI) in drinking water with the scTRACE Gold
The guideline value for total chromium in the World Health Organization’s (WHO) «Guidelines for Drinking-water Quality» is 50 µg/L. Chromium(VI) is more toxic than its trivalent form (Cr(III)) and is also less abundant. Therefore a robust and sensitive method is required to monitor its concentration in drinking water. The mercury film modified scTRACE Gold can be used to monitor chromium(VI), offering easy handling and a high grade of stability.
- AN-V-231Cadmium and lead in drinking water with screen-printed carbon electrodes
The provisional guideline values in the World Health Organization’s (WHO) «Guidelines for Drinking-water Quality» are set to 3 µg/L for cadmium and 10 µg/L for lead. The anodic stripping voltammetry (ASV) technique performed on the ex-situ mercury film modified Metrohm DropSens screen-printed electrode (SPE) can be used to simultaneously detect concentrations as low as 0.3 µg/L for both elements. This is suitable to monitor the WHO guideline values. The main advantage of this method lies in the innovative and cost-effective screen-printed electrode.
- AN-V-232Nickel and cobalt in drinking water with screen-printed carbon electrodes
EU legislation specifies 20 µg/L as the limit value for nickel in drinking water. The current provisional guideline value for Ni in the World Health Organization’s «Guidelines for Drinking-water Quality» is set to a maximum concentration of 70 µg/L. The adsorptive stripping voltammetry (AdSV) technique performed on the ex-situ bismuth film modified Metrohm DropSens 11L screen-printed electrode (SPE) can be used to simultaneously detect concentrations as low as 0.4 µg/L for nickel and 0.2 µg/L for cobalt with a 30 s deposition time.The disposable, maintenance-free sensor can be used conventionally in the laboratory with the 884 Professional VA, or alternatively in the field with the 946 Portable VA Analyzer. This method is best suited for manual systems.
- AN-V-233Selenium(IV) in drinking water
The difference between the toxic and essential levels of selenium to human health are very slight. Therefore, the current provisional guideline value for selenium(IV) in the World Health Organization’s «Guidelines for Drinking-water Quality» and in the European Drinking Water Directive is set to a maximum concentration of 10 µg/L.The anodic stripping voltammetric (ASV) technique performed on the unmodified scTRACE Gold can be used to determine concentrations as low as 0.5 µg/L selenium with a 30 s deposition time. These limits can be lowered even further by increasing the deposition time. The linear range at 30 s deposition time ends at approximately 100 μg/L. The scTRACE Gold electrode does not need extensive maintenance such as mechanical polishing. Measurements can be performed in the laboratory with the 884 Professional VA or alternatively in the field with the 946 Portable VA Analyzer. This method is suited for manual or automated systems.
- AN-V-234Tellurium(IV) in drinking water
Tellurium is one of the elements recently identified as technologically critical for photovoltaic conversion, quantum dots, as well as in thermoelectric technology, and has the potential to become a new emergent contaminant. Until now there is no guideline value in the World Health Organization’s «Guidelines for Drinking-water Quality» and in the European Drinking Water Directive for tellurium(IV) concentration in drinking water.To monitor the tellurium(IV) levels in drinking water, anodic stripping voltammetry (ASV) performed on the unmodified scTRACE Gold is recommended. This method allows determination of tellurium(IV) in the concentration range between 1 µg/L and 60 µg/L when using a 90 s deposition time. The scTRACE Gold electrode does not need extensive maintenance such as mechanical polishing. Measurements can be performed in the laboratory with the 884 Professional VA or alternatively in the field with the 946 Portable VA Analyzer.
- AN-V-235Cadmium in chocolate
The toxic element cadmium (Cd) can be found in elevated concentrations with high bioavailability in some soils. Under such conditions, cacao trees can accumulate cadmium in the beans, which are then processed into cocoa. Chocolate produced from the affected beans will contain elevated cadmium levels. Typical limit values in the European Union are between 100 µg/kg and 800 µg/kg (EU Commission Regulation 1881/2006) depending on the cocoa content of the chocolate.Anodic stripping voltammetry (ASV) can be used to accurately determine trace quantities of cadmium in chocolate down to approximately 10 µg/kg. The method is simple to perform, specific, and free of interferences. Prior to determination the samples are ashed in a furnace at 450 °C.
- AN-V-236Antimony stabilizer in an electroless Ni bath
Monitoring Sb(III) stabilizer levels during electroless Ni plating is critical for high-quality coatings. Anodic stripping voltammetry offers fast, reliable Sb(III) analysis.
- AN-V-237Lead stabilizer in an electroless Ni plating bath
Electroless nickel plating ensures low-cost wear and corrosion resistance. Monitoring lead stabilizer levels in Ni plating baths is possible with the Bi drop electrode.
- AN-V-238Bismuth stabilizer in an electroless Ni plating bath
Electroless Ni plating offers superior surface finish and corrosion resistance. Anodic stripping voltammetry allows Bi stabilizer to be monitored in Ni plating baths.
- AN-V-239Iron speciation in LiFePO4 batteries
Lithium iron phosphate batteries offer users safety and durability. Polarographic speciation evaluates Fe(II) and Fe(III) in cathode material, useful for several tests.
- AN-V-240Determination of total iodine in thyroid tablets with polarography
Accurate iodine determination in thyroid tablets, ensuring treatment efficacy, is achieved using the 884 Professional VA and Multi-Mode Electrode pro per USP guidelines.
- AN-V-242brightRC – Advanced brightener analysis with a response curve
brightRC enables reliable CVS (or CPVS) brightener quantification without repeated standard additions, especially for additive systems with nonlinear signal behavior. By using external response curve (RC) calibration and flexible regression, it avoids systematic errors inherent to linear standard addition methods and significantly reduces analysis time. This makes brightRC ideal for high throughput routine control in stable copper plating baths.
- BWT-4901BWT-4901Raman Spectroscopy for Quick Quality Analyis of Diamond Membranes
Portable Raman is used to characterize the quality of diamond foils made by CVD processes.
- BWT-4902BWT-4902Raman Analysis of Si Crytallinity
Raman spectroscopy at 532 nm excitation is used to study the crystalline and amorphous content of mixed phase silicon films.
- BWT-4903BWT-4903The NanoRam Hand-held Raman Spectrometer: Ideally-suited for the Inspection of Raw Materials and Chemicals Used in the Pharmaceutical industry
The NanoRam handheld Raman, with a TE-cooled spectrometer, and patented CleanLaze technology packaged in a small, touch-screen operating unit, delivers high quality raw material testing capabilities for pharmaceutical manufacturers.
- BWT-4904BWT-4904The Benefits of Raman Spectroscopy for the Identification and Characterization of Polymers
Raman spectroscopy is a quick nondestructive method for the direct identification of plastics. It can also be used for the analysis of flame retardants, lubricants and other additives. Coupled with chemometric software, quantitative and advanced qualitative analyses can be performed.
- BWT-4905BWT-4905The NanoRam Hand-held Raman Spectrometer Full Regulatory Compliance for the Inspection of Raw Materials and Chemicals Used in the Pharmaceutical Industry.
The NanoRam is a state-of-the-art, handheld Raman spectrometer for the rapid identification of chemicals used in the pharmaceutical manufacturing process. It has been specifically designed for these applications and is fully compliant with all the major global regulatory, safety, and commercial testing agencies applicable to the pharmaceutical industry.
- BWT-4906BWT-4906Rapid Raw Material Identification for Formulation Compounds Using Handheld Raman Technology
The raw materials whey, sorbitol, stearic acid, and calcium phosphate dihydrate dibasic all show very distinctive, unique Raman signatures, which indicates that Raman spectroscopy is the ideal technology for identification of these materials. The PCA model-based method provides reliable specificity to successfully identify these nondestructively in plastc samples bags using the NanoRam.
- BWT-4907BWT-4907Fundamentals of Raman Spectroscopy
The fundamentals of Raman instrumentation and spectroscopy are presented along with common applications of Raman.
- BWT-4908BWT-4908The Benefits of a High-Performance Handheld Raman Spectrometer for the Rapid Identification of Pharmaceutical Raw Materials
The principles and benefits of Raman are presented in terms of advances that make handheld Raman an integral tool for pharmaceutical manufacturers to comply with incoming material testing requirements. Examples of the NanoRam for positive identification of excipients including celluloses and sugars illustrate the selectivity of Raman.
- BWT-4909BWT-4909The Use of Raman Spectroscopy in the Field of Cancer Diagnostics
Raman spectroscopy and surface enhanced Raman spectroscopy (SERS) are proving to be invaluable tools in the field of biomedical research and clinical diagnostics. Raman systems are also being developed for molecular diagnostic testing to detect and measure human cancer biomarkers. This review highlights two applications realting to breast cancer and pancreatic cancer diagnosis together with examples of the use of Raman spectrometry in biomedical research areas such as the identification of bacterial infections, showing that Raman is an important part of the medical toolbox, as we continually strive to improve diagnostic techniques and bring a better health care system to patients.
- BWT-4910BWT-4910The Use of Portable and Handheld Raman for Forensic Investigations
Today's Raman instrumentation is faster, more rugged, and less expensive than in the past and the advances in component miniaturization have led to the design of portable devices with extremely high performance designed for field-based investigations. This study focuses on the use of handheld Raman spectroscopy for the characterization and identification of samples encountered in various application areas related to forensic science.
- BWT-4911BWT-4911Using Handheld Raman to Reduce Risks in Materials Used for Manufacturing
Raman spectroscopy is a valuable tool to provide rapid, specific analysis for identification of raw materials, thus reducing the risk of using substandard or incorrect materials in manufacturing. The utility of handheld Raman increases productivity, and the ability to do full testing without creating bottlenecks in the production process. The integration of the Raman data into a company’s data management system provides a secure means of handling data and results, with reduced risk of transcription errors, and data loss.
- BWT-4912BWT-4912Quantitative Analysis Using New Generation Raman Spectrometers and Chemometrics ─ Smaller and Faster
Small, fast high-performance Raman spectrometers are now readily available. Three real-life Raman quantitative and semi-quantitative analysis applications are discussed. These applications showcase the versatility of Raman spectroscopy and the potential impact that it can make in various industries such as security, pharmaceutical, and plastics and polymers.
- BWT-4913BWT-4913The Versatility of Portable Raman in Process Development
Raman spectroscopy is a well suited spectroscopic technique for process development and control within development laboratories in chemical, pharmaceutical, and other industries. This article demonstrates the utility of portable Raman spectroscopy as a simple and versatile tool for in situ monitoring of reactions using univariate analysis techniques such as peak trending, as well as multivariate analysis approaches to predict the end point of chemical reactions.
- BWT-4914BWT-4914Raman Spectroscopy Peers Through Packaging
Patented STRaman technology is a new Raman technique that can identify chemical species nondestructively beneath diffusely scattering packaging material such as plastics or tablet coatings.
- BWT-4915BWT-4915Portable, High-Efficiency Transmission Raman Spectroscopy for At-Line Content Uniformity Testing of Pharmaceutical Tablets
Content uniformity of solid dosage forms can be done nondestructively at the process line using the QTRam portable transmission Raman system.
- BWT-4916BWT-4916See-Through Science
Allowing non-destructive chemical identification through opaque materials, award-winning STRam represents an evolution in Raman technology.
- EB-001EB-001Near-infrared spectroscopy for the analysis of petrochemicals
Improve petrochemical quality control with NIRS. Fast, cost-effective, and no sample prep needed. Learn more in our eBook.
- EB-002EB-002NIR spectroscopy: The efficiency boost for QC labs
Enhance quality control in material and chemical production with NIRS. Fast, cost-effective, and no sample prep needed. Learn more in our eBook.
- EB-003EB-003Ion chromatography for food and beverage analysis
Efficiently analyze food products with ion chromatography (IC). Discover its robust applications in quality control for beverages, food additives, and dairy.
- EB-004EB-004Near-infrared and Raman spectroscopy for polymer analysis: An introduction
This e-book explains how Raman and near-infrared (NIR) spectroscopy enable rapid, nondestructive polymer analysis, ensuring high quality while reducing costs and waste.
- PERCHLORATE DETECTION BY IC USING HYDROXIDE AS THE ELUENTPerchlorate Detection by IC Using Hydroxide as the Eluent
- SIMULTANEOUS DETERMINATION OF ANIONS AND DISINFECTION BY-PRODUCTS (EPA 300.1) USING HYDROXIDE AS THE ELUENTSimultaneous Determination of Anions and Disinfection By-Products (EPA 300.1) using Hydroxide as the Eluent
- TA-016TA-016Determination of mercury and arsenic using speciation analysis (IC-ICP/MS)
The combination of ion chromatography and inductively coupled plasma mass spectrometry (IC-ICP/MS) is ideally suited for the detection of species of arsenic and mercury in their various oxidation levels and forms of chemical bonding. However, some species – as in the case of mercury – are reciprocally converted into one another during sample preparation, thus making a determination of the initial concentrations of the heavy metal species impossible. This article shows how these interconversions can be calculated with isotope dilution analysis and IC-ICP/MS in accordance with EPA method 6800.
- TA-019TA-019Simultaneous determination of mineral acids, fluoride and silicate in etching baths.
This article describes an ion chromatography method for the simultaneous determination of HF, HNO3, H2SO4, short-chain organic acids, and of H2SiF6 in acid texturing baths.
- TA-020TA-020IC-MS and IC-ICP/MS analysis in the environment
This article describes the coupling of ion chromatography with mass spectrometry (IC-MS) and plasma mass spectrometry (IC-ICP/MS) for the trace analysis of potentially hazardous compounds in the environment.
- TA-021TA-021Determination of the halogen and sulfur content in complex organic matrices by means of Combustion Ion Chromatography (CIC)
The automated combination of pyrolysis and subsequent ion chromatography (Combustion IC) permits the parallel detection of halogens and sulfur in all flammable solid and liquid matrices. The method is captivating, not only because of its outstanding precision and trueness, but also because of the high sample throughput.
- TA-023TA-023Investigation of MRT contrast media containing gadolinium by means of IC-ICP/MS analysis
This article describes the investigation using ion chromatography and subsequent inductively coupled plasma mass spectronomy (ICP/MS) to determine the extent to which the iron(III) flocculation carried out in the context of wastewater treatment releases toxic gadolinium(III) ions as the result of recomplexing.
- TA-044TA-044pH value, conductivity and titration in water and soil analysis
The rapid growth of the Earth's population has led to massive increases in the consumption of energy and resources and in the production of consumer products and chemicals. It is estimated that 17 million chemical compounds are currently on the market, of which 100,000 are produced on a large industrial scale. Many of these enter the environment. This leads to a demand for sensitive analytical procedures and high-performance analytical instruments.pH value, conductivity and oxygen requirement are important characteristics in water and soil analysis. The first two of these can be determined rapidly; for the third, the titration that is used is also the one used in numerous single determinations. This article describes several important standard-compliant determinations in water and soil analysis.
- TA-052TA-052IC-ICP-MS analysis of iodized X-ray contrast media
On the basis of the experiments that have been performed, it is possible to determine the effectiveness of the ozonization of iodized X-ray contrast media using IC-ICP-MS via the amount of iodate formed. Whereas a 120-minute ozonization guarantees a practically quantitative decomposition of amidotrizoic acid to iodate, approximately 16% of the Iomeprol is still present under the same ozonization conditions. Given that only 14% is present in iodate form in the absence of iodide anions and given that additional, not yet identified peaks occur in the ion chromatogram, the presence of additional decomposition products containing iodine must be assumed. Nonetheless, it is not possible to detect the intact iodized X-ray contrast media with the selected ion chromatographic conditions. Furthermore, the possibility exists of identifying the peak of the unknown decomposition product of the Iomeprol using IC-ESI-TOF-MS.
- TA-054TA-054Online monitoring of atmospheric inorganic gases and aerosols in the Southeast and Northwest of the United States
This article describes the composition of atmospheric inorganic gases and aerosols in the Southeast and Northwest of the United States during a time period of several weeks. The semicontinuous sampling in hourly cycles takes place using the MARGA system from Metrohm Applikon. The temporal resolution of the aerosol and gas composition makes it possible to generate statements regarding the chemical origin and hygroscopicity of the particles. These are fundamental for rating the influence of aerosols on the climate.
- TA-057TA-057Chromate in toys, leather and drinking water
Chromate is allergenic, carcinogenic and extremely toxic. It is therefore subject to strict monitoring. It is present in different concentrations in drinking water, toys, textiles, leather and many other materials. Metrohm has developed various methods for ion chromatographic determination of chromium(VI) which, thanks to Inline Sample Preparation, are suitable for a variety of matrices and concentration ranges – from ng/L to mg/L.
- US EPA METHOD 300.0 WITH METROHM IC (QUICK REFERENCE GUIDE)US EPA Method 300.0 with Metrohm IC (Quick Reference Guide)
- WP-001WP-001Chromium(VI) determination in children's toys
This article describes a simple and sensitive method for chromium(VI) determination in children's toys. The solution to be analyzed is prepared in accordance with DIN EN 71. Not only VIS detection but also post-column derivatization using diphenylcarbizide are parts of this method. The procedure described here is suitable for the precise determination of hexavalent chromium in the single-digit ppt range and, in addition, fulfils without difficulty the limit value of 10 ppt prescribed by the EU directive 2009/48/EC.
- WP-002WP-002Basics of potentiometry
The present article addresses the theory, practical aspects and troubleshooting of potentiometry.
- WP-003WP-003pH measurement: Six technical tips
This white paper presents six technical tips that you should consider before taking a pH measurement.
- WP-004WP-004Electrochemistry in the environmental sciences
This Metrohm White Paper presents the important role of electrochemistry in the environmental sciences. The applications have to do with basic research for the fuel cell that yields energy from wastewater, the electrical clean-up of contaminated soil and electrochemical CO2 reduction of greenhouse gases for isolating chemical raw materials.
- WP-007WP-007Electrochemistry in the quality control of food packaging
The shelf life of foods and beverages depends among other things on the packaging material used. Metals are ideally suitable for packaging, as they can be laminated with various passivating and food-compatible layers. Electrochemical measurements such as Electrochemical Impedance Spectroscopy (EIS) make it possible to check the layers for damage.
- WP-008WP-008Coupling of ion chromatography and plasma mass spectrometry
The coupling of ion chromatography and inductively coupled plasma mass spectrometry (ICP/MS) leads to a high-performance measurement system that masters several particularly challenging analyses. It enables for example reliable determination of element compositions, oxidation states and chemical bonds. This information is used, for example, for assessing the toxicity of medications, environmental and water samples as well as foods and beverages.
- WP-009WP-009Determination of anions in tap water in accordance with US EPA Method 300
This article describes a simple method for the determination of seven standard anions (fluoride, chloride, nitrite, bromide, nitrate, phosphate and sulfate) in accordance with US EPA Method 300 Part A. An IC system is extended to include Inline Ultrafiltration and Inline Eluent Preparation for the analysis.
- WP-010WP-010Glyphosate and AMPA in drinking water
For the first time, glyphosate determination and that of its primary metabolite AMPA in drinking water using IC with pulsed amperometric detection (flexIPAD) in the low µg/L range are shown. Compared to HPLC analysis with a mass-selective detector, it is a very cost-effective method for determining the glyphosate and AMPA content in water and foodstuffs. With a detection limit at approx. 1 µg/L, compliance with limit values for glyphosate can be monitored in the USA, Canada, and Australia, among others.
- WP-011WP-011Sustainable Testing of Paint and Coatings
More strict regulations paired with more complex products have increased testing complexity in the paint and coating industry. Therefore, producers ask for more powerful, safe and sustainable analytical methods. Testing by Vis-NIR spectroscopy is a sustainable and costefficient alternative to many wet chemical methods. This white paper describes how Vis-NIR spectroscopy improves testing procedures for various analyses during the formulation and production of paint and coatings in an economic and ecological way.Key words: testing, sustainable, VOC, paint, coating, binders, resins, additives, pigments, solvents
- WP-012WP-012Corrosion control: Thermometric TAN analysis in oil & refinery distillation fractions
Many refiners look at discounted opportunity crudes as a means to improve their margin spread. The varieties of these cheap crude oils on the market are growing in number, but they have hidden risks for the purchaser caused by factors such as high naphthenic acid and sulfur content. Sulfur compounds and naphthenic acids are among the substances that contribute to the corrosive nature of crude oils and petroleum products. This is why the risk of corrosion is increased when processing crude oils with high naphthenic acid and sulfur content. The refiner must balance the cost benefit versus the risk and the cost of corrosion control when processing these crudes. A reliable acid number determination is a crucial part of corrosion control. Guest authors Bert Thakkar, Bryce McGarvey, and Colette McGarvey of Imperial Oil and Larry Tucker and Lori Carey of Metrohm USA were involved in the development of the new ASTM Method D8045 for acid number determination. Here, they report on the method and how it came to be.
- WP-014WP-014High productivity and profitability in IC environmental analysis
Brad Meadows is Vice President and Lab Director at the US company BSK Labs, which runs a number of environmental laboratories and service centers. Brad is an analytical chemist and has been working in the management of analysis laboratories for 15 years. He shared his experiences with Metrohm ion chromatography with us in the form of some concrete facts and figures.
- WP-017WP-017Near-infrared spectroscopy in pharmacopoeias
The pharmaceutical industry is very likely more comprehensively regulated that any other branch of industry. It therefore requires analytic methods that meet the requirements of regulations while at the same time being practical. This applies in particular for large sample quantities, such as are encountered with incoming goods inspections, for example. It is here that particularly rapid and simple analysis methods are called for which make routine analyses simpler and more efficient. This White Paper describes some of the most important regulations in the pharmaceutical analysis and shows how Vis-NIR spectroscopy can solve analytic problems in the pharmaceutical industry in accordance with regulations.
- WP-018WP-018FDA 21 CFR Part 11 Requirements for NIR Spectroscopy
This Metrohm White Paper shows the requirements demanded of the pharmaceutical industry by the FDA with respect to software products. Implementation examples of the regulations formulated by the FDA in 21 CFR Part 11 are presented using Vision Air Pharma Software.Key words: electronic signatures, audit trails, user management, documentation
- WP-019WP-019Ion chromatography – a universal technique with many applications in the pharmaceutical industry
Ion chromatography is a flexible technique with a large selection of intended uses in the pharmaceutical industry. – A few development trends and the latest advances are displayed here.
- WP-020WP-020Near-infrared spectroscopy: Technology comparison
This White Paper compares the two most commonly used technologies in near-infrared spectroscopy: Predispersive monochromator technology and Fourier transformation technology. In addition to measurement speeds and captured spectral ranges, the noise levels and the signal-noise ratios associated with them are also contrasted with one another.
- WP-021WP-021Water analysis in the field: Determining arsenic, mercury, and copper
Heavy metals such as arsenic and mercury find their way into the ground water in many regions of the world, either through natural processes or as the result of human activities. Limit values are exceeded many times over, particularly for arsenic in drinking water, in many areas. This calls for a rigorous monitoring of water quality. The present whitepaper focuses on field determinations of arsenic, mercury, and copper – directly at the sampling site.
- WP-022WP-022In situ SERS effect with screen-printed silver electrodes
In this work, time resolved Raman spectroelectrochemistry measurements with screen printed electrodes are shown. The instrument used combines in a totally integrated box: a 785 nm laser source, a high resolution Raman spectrometer and a bipotentiostat/galvanostat. Experiments are controlled with an excellent spectroelectrochemical software which allows real time data collection and useful data treatment.
- WP-023WP-023Karl Fischer titration and near-infrared spectroscopy in perfect synergy
Metrohm has shaped moisture analysis for more than half a century. Find out about new developments in water analysis and learn how near-infrared spectroscopy in combination with Karl Fischer titration can increase your sample throughput and boost your productivity.
- WP-024WP-024Verification, p-values, and Training Sets for the Mira P
This white paper differentiates between methods for identification of unknowns and verification of known materials. The goal of this publication is, ultimately, to inform the user of the capabilities of the handheld Metrohm Raman Mira P system. Best practices for building robust training sets for materials verification with Mira P can also be found here.
- WP-026WP-026Surface Enhanced Raman Scattering (SERS) – Expanding the Limits of Conventional Raman Analysis
Surface Enhanced Raman Scattering or SERS is an anomalous enhancement of Raman scattering when molecules are adsorbed to gold or silver nanoparticles – this enhancement can be as large as 107. The advantage of SERS for the analytical chemist lies in its ability to detect analyte concentrations of parts per million and even parts per billion levels, while classical Raman is limited to parts per thousand. Metrohm Raman produces P-SERS assays in the form of nanoparticles printed onto substrates using inkjet technology. This method produces inexpensive test strips that exhibit exceptional stability and sensitivity. There are two markets that can be easily addressed with P-SERS: forensic analysisand food safety. This white paper explains the mechanism of SERS and how it can be applied to handheld Raman analysis with Metrohm Raman Mira systems.
- WP-027WP-027Smart Acquire – Automated Raman Material ID for Defense and Security Professionals
An analytic chemist in your back pocket. A forensic laboratory in a suitcase. A HazMat team in the trunk of your car. First responders need all the help they can get when faced with potentially dangerous substances. Mira DS from Metrohm Raman is a sophisticated chemical analyzer that replaces the specialist with automation. The push of a button initiates proprietary Smart Acquire routines to optimize acquisition parameters and collect the highest quality spectra. These spectra are automatically subjected to library search and Mixture Matching routines capable of identifying up to three components of a mixture. When hazardous substances are detected, the user is alerted to immediate action with color-coded warnings.
- WP-028WP-028Safety in Any Situation – Addressing the needs of first responders
Metrohm Raman presents a unique handheld materials identification system designed to meet the needs of defense and security professionals. Meet Mira DS, the most adaptable Raman analyzer available today. Mira DS was developed directly in response to requests from first responders in the field for a small, rugged, automated materialsidentification system that ensures the safety of the user in any situation.
- WP-029WP-029Near-Infrared Spectroscopy: Quantitative analysis according to ASTM E1655
Near-Infrared spectroscopy (NIRS) is a widely used analytical technique for quantitative analysis of various products in research and industrial applications. This white paper summarizes the workflow of the development of quantitative methods according to ASTM E1655.
- WP-030WP-030Analytical method transfer
Near-infrared spectroscopy (NIRS) is a widely used analytical technique for qualitative and quantitative analysis of various products in research and industrial applications. Because of different reasons it might be necessary to transfer analytical methods from one NIR analyzer to another one. This white paper summarizes the workflow of such method transfer.
- WP-031WP-031Lifecycle of multivariate methods according to United States Pharmacopeia Chapter <1039> Chemometrics
Chemometrics is a powerful tool widely used for method development in the pharmaceutical industry. This whitepaper describes the lifecycle of multivariate models and summarizes the workflow of the development of chemometrical models according to the new USP chapter <1039>.
- WP-032WP-032Creating Custom Libraries Detection of Binary Explosives with Mira DS
Detection of threatening materials requires robust and sophisticated instruments capable of safe, instantaneous field-analysis of unknowns. In an environment where there is an ever-evolving threat of explosives made from commonlyavailable chemicals, explosive libraries must be customized constantly to include newly targeted materials. Mira DS from Metrohm Raman is the perfect solution for detection of explosives in the field. This handheld Raman instrument is equipped with sophisticated analysis algorithms and a suite of safety features for first responders who need the identity of a potential hazard... NOW! Mira DS and its software can be customized to respond to emerging hazards: this note describes procedures for creating custom libraries of binary explosive precursors to be used in library comparison and mixture matching routines on Mira DS. With these tools, unknown substances can be identified with color-coded warnings for fast action in critical situations.
- WP-033WP-033Identifying Narcotics in Complex Samples
A person suspected of possessing a narcotic can be charged with a crime only after the identity of the illicit substanceis confirmed. This confirmation is typically provided by analytical chemists in forensic laboratories and requires highly technical separation and detection methods. Unfortunately, such labs often have deep caseloads that lead to delays in testing. Handheld Raman analyzers bring the reliability and accuracy of lab analysis to first responders in the field, allowing for rapid and accurate identification of street drugs with a white powder appearance. With such tools, demand for forensic analysis can be reduced and enforcement agencies can enforce drug policies with greater safety, speed, and precision.
- WP-034WP-034Determination of Heroin in Street Drug Samples
Printable Surface Enhanced Raman Scattering (P-SERS) silver substrates were used with Metrohm Raman’s Mira DS handheld Raman analyzer to successfully detect heroin in 18 crude street heroin samples. Detection of heroin with P-SERS was accomplished easily and very quickly, with minimal sample clean-up. Solvent studies were also implemented to determine the optimal solvent for crude sample extraction, with results included here.
- WP-035WP-035Facile Verification of Edible Oils with Raman Spectroscopy
Edible oils comprise a significant portion of any diet, and they also have important roles in the production of foods, cosmetics, and skincare products. For these reasons, a convenient and accurate method for materials identification of a variety of fats and oils is highly desirable. Historically, authentication of fats and oils was performed through intensive laboratory techniques involving chromatographic methods. Here, Raman spectroscopy combined with Principle Component Analysis (PCA) has been used for materials identification with 16 different edible oils, with excellent results. Raman is an ideal technique for evaluation of fats, as carboncarbon double- and single-bonds give strong Raman signals. PCA analysis in combination with Raman spectroscopy is a powerful tool for qualification and verification of different fats and oils, as there are few visual differences between spectra of edible oils.
- WP-036WP-036Lean manufacturing of polyurethane, assisted by near-infrared (NIR) and Raman spectroscopy
Chemical manufacturing such as polyurethane production is characterized by a cost intensive production process combined with a negative ecological impact. These adverse effects can be significantly improved by using vibrational spectroscopy. This analytical technique can assist the operator of the plant to reduce costs and minimize the impact onthe environment as is demonstrated in the present white paper.
- WP-037WP-037Simplifying quality control using Near-Infrared Spectroscopy
Quality control is impacted by multiple challenges, which can have an influence on the functioning of the QC lab. The present White Paper provides approaches, how to simplify the daily quality control using near-infrared spectroscopy combined with a dedicated smart software like Vision Air.
- WP-038WP-038FDA 21 CFR Part 11 Compliance by Metrohm Raman
Norms and Standards 21 CFR Part 11 is the FDA rule relating to the use of electronic records and electronic signatures.Recognizing the increasing impact of electronic media on critical data in regulated environments, the FDA met with members of the pharmaceutical industry in the early 1990s. The pharmaceutical industry and the FDA were interested in how they could accommodate paperless record systems and ensure the reliability, trustworthiness, and integrity of electronic records.
- WP-039WP-039Ion chromatography – addressing the latest challenges in environmental analysis
The analytical challenges of environmental analysis increase in difficulty from year to year. As well as analysis of particularly toxic types of metals such as chromium(VI), highly diverse and partially persistent organic fluorine compounds (e.g., trifluoroacetic acid) are presently in focus. The analysis of toxic oxohalides such as bromate and perchlorate is also a current subject of investigation.
- WP-040WP-040Benefits of Client-Server Systems for Quality Control with Vis-NIR Spectroscopy
Analyzer systems monitoring product quality can offer substantial advantages when organized in a client-server network compared to the more traditional local installation. This white paper presents different client-server setups and their benefits. Security aspects that need to be considered are discussed based on the example of the client-server Vis-NIR (visible near-infrared) spectroscopy software Vision Air, widely used for quality control in the chemical, polymer, pharmaceutical, and petrochemical industry.
- WP-042WP-042Data Integrity with NIR-Spectroscopy Software
Data Integrity is currently a hot topic issue that has created much attention and has raised concern within companies working in regulated environments. This White Paper explains some of the key terms used in the context of Data Integrity and outlines how the requirements of Data Integrity can be understood and implemented.
- WP-043WP-043Instrument Calibration, System Verification, and Performance Validation for Metrohm Instant Raman Analyzers (Mira)
Analytical Instrument Qualification (AIQ) according to the United States Pharmacopeia (USP) ensures that instruments perform as intended and users may have confidence in data quality. As the Pharma industry adopts handheld Raman instruments for incoming materials identification and verification, producers of such systems must provide suitable calibration and validation routines. Upon completion of these tests, end users are assured that all measurements are in accordance with agreed standards at Metrohm Raman, we have sophisticated AIQ routines in place to confirm the quality of your results.
- WP-044WP-044Fundamentals of Electrochemical Corrosion Research
Free white paper describes the effective use of electrochemical techniques to measure corrosion and the effectiveness of inhibitors.
- WP-045WP-045When HPLC fails: IC in food, water, and pharmaceutical analysis
High-Performance Liquid Chromatography (HPLC) and Ion Chromatography (IC) are commonly used in the pharma, food, and environmental sectors to analyze samples for specific components and to verify compliance with norms and standards. However, users of HPLC may run into the limitations of this technique, e.g., when analyzing standard anions or certain pharmaceutical impurities. This white paper outlines how such challenges can be overcome with IC.
- WP-046WP-046Overcoming the aqueous limitation at NIR Spectroelectrochemistry
NIR spectroscopy has been traditionally limited due to the water absorption in this spectral range. In this way, the well-known water restriction has limited the development of new applications for NIR spectroelectrochemistry. In this work, several interesting alternatives are proposed in order to minimize or even to remove the aqueous contribution in this spectral range.
- WP-047WP-047Optimizing the chlor-alkali process through online chemical analysis
This White Paper explores the critical role of advanced online and inline process analysis in brine chlorine operations, emphasizing their advantages over traditional methods.
- WP-048WP-048Utilizing online chemical analysis to optimize propylene oxide production
Propylene oxide (PO) is a major industrial product used in assorted industrial applications, mainly for the production of polyols (the building blocks for polyurethane plastics). Several production methods exist, with and without co-products. This white paper lays out opportunities to optimize PO production for safer and more efficient processes, higher quality products, and substantial time savings by using online process analysis instead of laboratory measurements.
- WP-049WP-049Your IC results are only as good as your sample vials
Polymeric sample vials are frequently contaminated with leachable organic or inorganic ions, which originate from the production process or the raw material. These substances can falsify measurement results. The study at hand compares the leaching properties of several vial types from different manufacturers, showing considerable variations in quality and proving the importance of the right choice of vials for ion chromatography (IC). This white paper also provides recommendations and precautions to further reduce leachable contaminants for IC trace analysis.
- WP-050WP-050Manual titration vs. automatic titration: benefits and advantages to switching
This white paper summarizes the advantages and benefits of automated titration in comparison to manual titration. The increase in accuracy and precision of measurements as well as significant time and cost savings are discussed.
- WP-051WP-051Automated CVS method development and optimization of multicomponent plating baths
For the past three decades, Cyclic Voltammetric Stripping (CVS) has been the standard practice for analyzing organic additives in electroplating copper baths in the circuit board and wafer plating industries. The variations in the compositions of such baths have created a need for more optimized method development routines. New advancements in the hardware and software protocols for CVS have simplified the overall process of method optimization to a great extent. In this study, the process of method optimization is discussed in conjunction with these protocols.
- WP-052WP-052A Guide to Li-ion Battery Research and Development
The commercialization of Li-ion batteries in 1991 was the culmination of in-depth R&D conducted by scientists and engineers around the globe over the preceding few decades. Further development of Li-ion batteries and alternative rechargeable batteries has continued until today. As the world is rapidly moving towards a new era defined by green technologies, more practical and accurate R&D is required in order to meet the increasing demands for energy storage systems, specifically from the automotive industry. This white paper presents the basics of the Li-ion battery technology and guides the reader through the relevant techniques and terminologies in Li-ion battery research.
- WP-053WP-053Determination of Acid Number (AN) with Titration and NIR Spectroscopy
The acid number (AN) is a measure for the quality of oils and their potential to enhance corrosion. When analyzing fresh, unused oils, the AN is used to ensure the specified quality from the manufacturer, whereas for used oils the AN is determined to observe its increase until a critical level is reached. Although it is generally assumed that the AN correlates to the corrosive potential of the oil, this is not exactly correct, as it is the change of the AN value which indicates this issue. Therefore it is necessary to determine the AN on a regular basis.Several standards already exist to determine AN via titration methods, however it is also possible to measure this parameter via spectroscopic (NIRS) methodology. No matter which technique you choose, Metrohm has you covered with high-performance instruments suitable for these published norms.
- WP-054WP-054Boost efficiency in the QC laboratory: How NIRS helps reduce costs up to 90%
Underestimation of quality control (QC) processes is one of the major factors leading to internal and external product failure, which have been reported to cause a loss of turnover between 10–30%. As a result, many different norms are put in place to support manufacturers with their QC process. However, time to result and the associated costs for chemicals can be quite excessive, leading many companies to implement near-infrared spectroscopy (NIRS) in their QC process. This paper illustrates the potential of NIRS and displays cost saving potentials up to 90%.
- WP-055WP-055Corrosion Best Practice – Creating Pipe-flow Conditions Using a Rotating Cylinder Electrode
Electrochemical measurements utilizing a rotating cylinder electrode (RCE) are widely used in industrial corrosion applications when simulation of realistic pipe conditions are necessary in a lab environment. This white paper allows further insight into the particularities and parameters which govern the electrochemical measurements, in particular measurements performed in turbulent flow conditions, and shows a complete picture of the best practice use of this technique. The annexes provide an overview and short explanation of the parameters and laws specific to the fluid behavior in electrochemical cells with RCE.
- WP-056WP-056Determining dissolved oxygen in water – Titration or direct measurement?
«Dissolved oxygen» describes the amount of oxygen molecules (O2) which are dissolved in a liquid phase under certain conditions. In this white paper, two different methods for the analysis of dissolved oxygen, titration and direct measurement, are compared and contrasted to help analysts determine which method is more suitable for their specific applications. Here, we primarily focus on the determination of dissolved O2 in water. However, the same principle applies for other liquid phases such as non-alcoholic or alcoholic beverages.
- WP-057WP-057FOS/TAC Quotient for the optimization of methane production from biomass
The FOS/TAC value is an important characteristic to assess the status of the fermenter before costly problems arise. The new Eco Titrator from Metrohm allows the determination of this quotient in a fast, cost-efficient, and precise way.
- WP-058WP-058Virus detection: Fast, sensitive, and cost-effective with electrochemical testing
With significant global viral outbreaks becoming the norm rather than generational outliers, it is imperative that fast, sensitive, and cost-effective testing is available to the masses. Screen-printed electrodes (SPEs) allow rapid, widespread testing of populations for infectious disease, without the need of skilled personnel or burdensome equipment in the field. The possibility of point-of-care (POC) testing with SPEs has been exhibited in several recent studies. Metrohm DropSens combines high production capabilites of custom-made SPEs with a valid ISO 13485 certification "Manufacturing of sensors for medical devices", meaning testing procedures developed on these SPEs can be reliably scaled up for larger operations, with easier regulatory approval for commercialization.
- WP-059WP-059Stability-based value of natural oils: Easy to determine with the Rancimat test
Rancidity of oils and fats is a factor which can immediately reduce the sale price of these products to customers in the food and cosmetics industries. Oils which remain stable over longer periods of time are more highly valued as they lead to a higher quality end product. Rancidity is a natural process which occurs as fats and oils age and oxidize, and can be delayed or even stopped by addition of antioxidants at the right time.Determination of rancidity is possible in several ways (e.g., measuring the acid number or peroxide value), though these tests only give information about the current state of the product, with no indication about the remaining shelf life. One analytical method that can measure this time span until spoilage is the Rancimat method, which artificially ages the samples to determine whether antioxidants may be needed to help manufacturers get the full value from their oils.
- WP-060WP-060Multiparameter analysis in fertilizers: Fast and easy via thermometric titration
Agriculture at significant scale without fertilizers is no longer possible in the modern world. To grow a sufficient amount of produce for nearly 8 billion people as well as for domesticated animals and industrial uses, fertilizers of different nutrient compositions are available to cater to the unique needs of various soil types. Information on the fertilizer’s composition (e.g., total nitrogen, phosphorus, and potassium) is available to help select the ideal fertilizer for a specific soil. Conventionally these constituents are determined either gravimetrically (e.g., phosphorus, potassium, or sulfate) or with ICP-OES (e.g., phosphorus or potassium). These methods either have the disadvantages of long analysis times combined with laborious sample preparation (gravimetry), or require expensive instrumentation with high running costs (ICP-OES). This White Paper elaborates how thermometric titration is a fast and inexpensive alternative method to provide information on the content of various nutrients in different fertilizers.
- WP-061WP-061Moisture in petroleum products according to ASTM D6304
Knowledge of the water content in lubricating oils, additives, and similar products is important in the manufacturing, purchase, sale, or transfer of petroleum products to help estimate their quality and performance characteristics. Monitoring the water content in such products can prevent damage to infrastructure and ensure safe operation by avoiding corrosion processes and subsequent engine wear. This White Paper explains the easy determination of moisture in petroleum samples by coulometric Karl Fischer titration according to the three procedures outlined in ASTM Method D6304. A comparison is given between the procedures to determine which is most suitable for different sample types.
- WP-062WP-062Overcoming difficulties in ion measurement: Tips for standard addition and direct measurement
Ion measurement can be conducted in several different ways, e.g., ion chromatography (IC), inductively coupled plasma optical emission spectrometry (ICP-OES), or atom absorption spectroscopy (AAS). Each of these are well-established, widely used methods in analytical laboratories. However, the initial costs are relatively high. In contrast, ion measurement by the use of an ion-selective electrode (ISE) is a promising alternative to these costly techniques. This White Paper explains the challenges which may be encountered when applying standard addition or direct measurement, and how to overcome them in order for analysts to gain more confidence with this type of analysis.
- WP-063WP-063Recommendations for converting a manual titration procedure into an automated titration procedure
This white paper summarizes the steps involved in converting an existing manual titration procedure to semi-automated or automated titration procedures. It discusses topics such as selecting the right electrode and titration mode. For a better understanding, the discussion topics are illustrated with three examples.
- WP-064WP-064Illicit Drug Trafficking and Border Control with Mira DS: Safe Fentanyl Identification
Like any defense and security professional, border agents must quickly and accurately identify suspicious substances at the point of contact. When that substance is fentanyl, which is deadly in microdoses, the stakes are even higher. The Mira DS handheld Raman system from Metrohm Raman offers safe, no-contact identification of over 200 fentanyl analogues. Mira DS protects border agents, while they protect citizens from deadly narcotics, drug smugglers, and illegal entry of goods.
- WP-065WP-065Simplified sulfite determination in foods and beverages using ion chromatography
Sulfites are well-known additives in foods and beverages used to extend shelf life and preserve colors. Such properties have led to the broad usage of sulfites in a range of foodstuffs like fruits, cereals, vegetables, seafood, juices, alcoholic and non-alcoholic (soft) beverages, and in some meat products. The term «sulfites» describes a group of molecules that include sulfur dioxide (SO2) and chemically related molecules like sodium sulfite (Na2SO3), sodium bisulfite (NaHSO3), or sodium metabisulfite (Na2S2O5). Sulfite intake has been correlated with several adverse reactions, and therefore sulfites are included in the FAO/WHO Codex Alimentarius list. Labelling sulfite content in foods and beverages is necessary when the total concentration exceeds 10 mg/kg. Metrohm ion chromatography allows the reliable measurement of sulfite in different matrices using either conductivity or amperometric detection. The inclusion of automated sample preparation and cleaning steps with Metrohm instrumentation saves additional analyst time and helps increase sample throughput.
- WP-066WP-066An introduction to ion chromatography mass spectrometry (IC-MS)
Ion chromatography mass spectrometry (IC-MS) is a powerful tool that can handle many challenging analytical tasks which cannot be performed adequately by IC alone. IC-MS is a robust, sensitive, and selective technique used for the determination of polar contaminants like inorganic anions, organic acids, haloacetic acids, oxyhalides, or alkali and alkaline earth metals. After separation of the sample components via IC, mass selective detection guarantees peak identity with low detection limits. The inclusion of automated Metrohm Inline Sample Preparation (MISP) allows not only water samples, but also chemicals, organic solvents, or post-explosion residues to be readily analyzed without need for extensive manual laboratory work. This White Paper explains the benefits of IC-MS over IC in certain cases, the hyphenation of IC and different MS systems, as well as related norms and standards.
- WP-067WP-067Quality control of semiconductor acid baths as per ASTM E1655 – Time- and cost-efficient with NIRS
The demand for microelectronics and printed circuit boards (PCBs) has steadily increased as more flat panel displays, LEDs, photovoltaics, and other essential intermediates are required to create modern consumer devices. This is favorable for the semiconductor industry, though challenges may arise to deliver on time while upholding high quality standards. To be successful, several processes must be optimized in order to increase production efficiency. This White Paper describes the capabilities of the modern analytical method near-infrared (NIR) spectroscopy for assessing the quality of acid baths for etching of microelectronics and printed electronics. Not only are analysis times sharply reduced to less than a minute, the related running costs are also significantly lower – certainly a boost in efficiency that should not be overlooked!
- WP-068WP-068Recommendations for titration methods validation
The objective of validation of an analytical procedure is to demonstrate that it is suitable for its intended purpose. Recommendations for the validation of analytical methods can be found in ICH Guidance Q2(R1) Validation of Analytical Procedures: Text and Methodology and in USP General Chapter <1225> Validation of Compendial Procedures. The goal of this white paper is to provide some recommendations for the validation of titration methods.
- WP-069WP-069(Un)Grounded: Grounded and floating measurements and their application in electrochemical research
In this White Paper, details of the electronic (PGSTAT) and electrochemical cell grounding are presented together with the necessity of using a floating PGSTAT for different application and experimental examples. Due to the wide variation of experimental requirements and kinds of electrochemical cells, the use of an electrochemical instrument with a selectable floating feature (such as VIONIC) which brings additional versatility to the user is recommended.
- WP-070WP-070On-site Identification of Improvised Incendiary Devices: Integrated Chemical ID and Decision Guidance with MIRA DS and HazMasterG3®
Handheld Raman is ever evolving. The combination of large libraries, a compact and easy-to-use system, and predictive Hazmat software make MIRA DS a powerful tool for defense and security professionals. Identify on-site materials, get hazard information, and make quick decisions about response to dangerous situations.
- WP-071WP-071Improving the corn to ethanol fermentation process with near-infrared spectroscopy (NIRS)
The fermentation of corn starch to produce ethanol is a complex biochemical process that requires monitoring of many different parameters (e.g., solids, pH, sugar profile, glycerol, lactic and acetic acid, and water and ethanol content). Traditional laboratory analysis using primary methods (e.g. Karl Fischer titration) takes about an hour to complete and is a limiting step for increasing plant capacity and efficiency. As a fast and non-destructive analytical technique, near-infrared spectroscopy (NIRS) can replace routine laboratory analysis, decreasing operating costs and increasing plant efficiency and capacity. This White Paper describes the capabilities of the modern analytical method near-infrared (NIR) spectroscopy for monitoring and improving the fermentation process of corn to ethanol.
- WP-072WP-072Fluorescence-free 785 nm material ID with MIRA XTR DS
In this White Paper, you will learn about MIRA XTR DS – the smallest, smartest, most flexible handheld Raman system with the largest libraries available on the market! MIRA XTR DS has all the benefits of 785 nm Raman interrogation: compact size, low laser power, sample preservation, long battery lifetimes... now with fluorescence rejection. Additionally, there is improved sensitivity and resolution over 1064 nm systems. This opens up new possibilities for 785 nm Raman, including strongly colored materials, common excipients, illicit materials, and more.
- WP-073WP-073On-site detection of hexavalent chromium in protective paint primers
It is widely accepted that prolonged exposure to hexavalent chromium compounds can have dire health effects. This has led to increased regulation of chromium-containing products and greater demand for technologies that can positively identify hexavalent chromium in potential matrices. These include paints, dyes, and primers, which can pose a problem for interrogation with Raman, as strongly colored materials often exhibit fluorescence when stimulated at 785 nm. Fluorescence can obscure the Raman signal and prevent positive identification. MIRA XTR DS provides all the functionality of handheld material ID with a new capability that selectively eXTRacts the Raman signal from fluorescent materials. Fluorescence rejection at 785 nm provides higher sensitivity and resolution than 1064 nm systems, as well as a much wider scope of applications amenable to Raman spectroscopy. MIRA XTR DS offers a comprehensive and versatile material ID test solution for field operations.
- WP-074WP-074Determination of polyribosylribitol phosphate (PRP) in Haemophilus influenzae vaccine using ion chromatography with pulsed amperometric detection
Haemophilus influenzae type B (Hib) is a major cause of bacterial meningitis in children in many countries. The capsular polysaccharide (PS) of Hib plays an important role in the virulence of the organism. The polysaccharide capsule hides cell surface components from elements of the mammalian immune system, such as antibodies and complement proteins that otherwise would activate mechanisms to kill the pathogen. Vaccines require rigorous characterization and assays to ensure final product quality and consistency. For glycoconjugate vaccines, it is important to measure both free and total PS to ensure the quality. A large amount of unconjugated PS may suppress immunity to the antigen. Additionally, the presence of free PS is a key indicator of process consistency. Current methods to determine PS content in vaccines such as Hib are imprecise and unreliable, especially if the vaccine contains a sugar stabilizer (e.g. lactose). Ion chromatography with pulsed amperometric detection (IC-PAD, or HPAEC-PAD) offers a simpler procedure and better sensitivity than other assays to quantify PS (here, polyribosylribitol phosphate [PRP]) in Hib vaccine.
- WP-075WP-075Simple determination of haloacetic acids (HAAs) in potable water with ion chromatography hyphenated to mass spectrometry
Haloacetic acids (HAAs) are commonly produced as disinfection byproducts (DBPs) from water treatment processes. Some HAAs are regulated by the authorities and have been classified as potentially carcinogenic. They have traditionally been analyzed by gas chromatography (GC), a technique that requires time-consuming sample extraction and derivatization, leading to higher costs per analysis. Ion chromatography hyphenated to mass spectrometry (e.g., single or triple quadrupole MS systems) is a powerful tool that can handle many challenging analytical tasks such as measuring μg/L levels of HAAs in potable water samples. This White Paper explains the benefits of using this hyphenated technique for the accurate measurement of HAAs in potable water.
- WP-076WP-076Process analyzers as proactive solutions for online corrosion monitoring
White paper on monitoring corrosion and the benefits of online or inline chemical analysis over manual sampling and offline laboratory methods for corrosion monitoring. Online and inline process application solutions for corrosion prevention with related application notes for further information are presented.
- WP-077WP-077Robust multiparameter analysis of infant and follow-on formulas with ion chromatography (IC)
Free white paper gives comprehensive overview of how to reliably assess the quality of infant formula with ion chromatography.
- WP-078WP-078Adsorbable organic fluorine (AOF) for screening of PFAS in waters
Learn about PFAS, their impact on water quality, EU Directive 2020/2184, and the benefits of AOF measurement using combustion ion chromatography (CIC).
- WP-079WP-079How to characterize a catalyst? Cyclic voltammetry in action
This White Paper introduces the principles of cyclic voltammetry (CV) and the various ways it can be used for catalyst investigation. A case study and helpful glossary are provided to support your understanding.
- WP-080WP-080Seamless electrochemical measurements with VIONIC powered by INTELLO
This White Paper introduces seamless measurements that are possible with VIONIC powered by INTELLO and applications that can benefit from this unique feature. The combination of software and new generation electronics provides data in real-time with no gaps or missed reactions.
- WP-081WP-081Fast determination of AOX in waters according to DIN 38409-59
Monitor adsorbable organic halogens (AOX) in water using combustion ion chromatography (CIC) for precise analysis of AOCl, AOBr, AOI, and total AOX.
- WP-082WP-082Measuring inorganic cations and amines with ion chromatography mass spectrometry (IC-MS)
This white paper presents IC-MS as powerful analysis technique. This multiparameter method determines various analytes such as inorganic cations and amines in one run.
- WP-083WP-083Hyphenated electrochemical-Raman spectroscopy: Another dimension for your research
White paper about Raman spectroscopy and electrochemistry and their combination (electrochemical Raman).
- WP-084WP-084Quality control of analytical parameters in battery production
Lithium-ion batteries (LIBs) are the most common rechargeable options available today. Production of LIBs needs to follow stringent quality standards.
- WP-085WP-085Improved antioxidant monitoring of in-service industrial lubricants
Voltammetry (VA) is a fast and established method for testing the remaining antioxidant content in industrial lubricants. The flexible and modular Metrohm VA system setup discussed in this White Paper delivers more repeatable and more reproducible results which fulfill all ASTM requirements. Additionally, users can automate the complete analysis process which makes it possible to run series of samples completely unattended.
- WP-086WP-086Measuring organic acids and inorganic anions with ion chromatography mass spectrometry
This White Paper focuses on selected IC-MS applications for the straightforward identification and quantification of organic acids and inorganic anions in different matrices.
- WP-087WP-087Green alternative methods for voltammetric analysis in different water matrices
This White Paper presents four different «green» sensors: the scTRACE Gold, screen-printed electrodes, the glassy carbon electrode, and the Bi drop electrode from Metrohm that can be used to determine low concentrations of heavy metals in different sample matrices, such as boiler feed water, drinking water, and sea water.
- WP-088Simplified analysis of dairy products with Metrohm Inline Dialysis
This White Paper compares automated Inline Ultrafiltration and Inline Dialysis to the traditional Carrez clarification procedure for the analysis of milk samples by ion chromatography (IC). A continuous test series over approximately six months proved Inline Dialysis to be a reliable and valuable alternative to treat dairy products prior to IC analysis.
- WP-089Water content determination in ketones using Hydranal™ NEXTGEN FA reagents
With Hydranal™ NEXTGEN FA reagents, the water content in ketones can be determined quickly and reliably. Compared to other existing KF reagents for ketones on the market, the side reactions are measurably better suppressed.
- WP-090WP-090Automated water hardness determination according to ASTM D8192
The ASTM D8192 standard allows analysts to determine water hardness in different water matrices by complexometry with automated photometric endpoint recognition, increasing the reproducibility and the precision of the results.
- WP-091WP-091Case study: Ion chromatography in pharmaceutical research and development
This White Paper will walk you through the selection process of ion chromatography as the best analytical tool in the product development of a cell-based gene therapy.
- WP-092WP-092USP monograph modernization initiative leading to modern ion chromatography-based methods
The USP and FDA started to modernize several monographs and General Chapters. In many cases, IC-focused methods have replaced older, wet chemistry procedures. Learn more about the USP modernization initiative and the advantages of ion chromatography in this white paper.
- WP-093WP-093Significant cost savings through dynamic ventilation during nitrification in wastewater treatment
This White Paper gives an overview of the energy-intensive nitrification process that converts ammonia into less harmful nitrogen compounds at wastewater treatment plants (WWTPs). It displays the results from a field test at a WWTP, showcasing the positive influence of single-method process analyzers on the efficiency of the nitrification process.
- WP-094WP-094OMNIS NIRS: An efficiency boost for your laboratory
This White Paper discusses the concept and benefits of NIR spectroscopy and outlines several real-life laboratory application examples with the use of OMNIS NIRS, the cutting-edge NIR spectrometer from Metrohm.
- WP-095WP-095The future of manufacturing and commercializing green ammonia with electrochemistry
Free White Paper outlines the fundamental principles of the nitrogen reduction reaction. It then delves into the technical barriers hindering the industrialization of green ammonia production, their impact on final yield and selectivity, and potential strategies or research gaps to overcome these issues.
BWT-840000345
Handheld Raman bottle adapterHandheld Raman accessories: bottle adapterNR2-BSA
BWT-840000346
NanoRam Tablet HolderNanoRam tablet holder adapter.
BWT-840000347
NanoRam Immersion ProbeImmersion probe – 30.5 cm (12 inch) length – stainless steel with quartz objective.
BWT-840000348
Polystyrene Validation CapPolystyrene Validation cap with integrated ASTM standard polystyrene.
BWT-840000349
NanoRam 6 mm ShaftNanoRam (model BWS456-785 only) replacement shaft with objective for sampling adapters – point-and-shoot; vial holder; bottle adapter. Working distance 6 mm.
BWT-840000350
NanoRam 10 mm ShaftNanoRam Shaft with lens for thick container sampling. Working distance 10 mm.
BWT-840000352
LAN cableLAN cable for connection to PC.
BWT-840000353
Shaft Protection CapHandheld Raman shaft protective cap, package of 10.
BWT-840000354
Pouch for adapters (NR2-PCH-ADPT)Pouch for handheld Raman adapters compatible with NanoRam-1064, TacticID-N Plus, and TacticID Mobile.NR2-PCH-ADPT
BWT-840000355
NanoRam Leather Shoulder BagLeather shoulder bag for NanoRam unit including one NR2-PCH-ADPT pouch for holding accessories.
BWT-840000361
Handheld Laser Power MeterLaser Power Meter, Pen Type, Calibrated. Range: 5 micro-Watts to 1 Watt. Used in OQ/PQ and annual certification laser power measurement.
BWT-840000403
10.8 V rechargeable lithium ion batteryRechargeable lithium-ion battery: fits TacticID-N Plus, TacticID Mobile, and NanoRam-1064.TID-BAT
BWT-840000406
TacticID Vial-Holder AdapterTacticID Vial-Holder Adapter, compatible with 15 mm-diameter vials.
BWT-840000414
18 V Power AdapterPower adapter for 18 V DC, 1.67 A. Plugs for USA, EU, UK and AU included in the scope of delivery.TID-PWA
BWT-840000416
TacticID Point-and-Shoot adapterTacticID Point-and-Shoot adapter.
BWT-840000417
TacticID Validation CapTacticID Validation Cap with integrated ASTM-standard polystyrene. For use with TacticID-N Plus and TacticID-GP Plus.
BWT-840000418
TacticID-GP shaft protection cap (Yellow)TacticID-GP and TacticID-GP Plus shaft protection cap (Yellow).TID-CAP-GP
BWT-840000419
TacticID Stylus/pen comboStylus/pen combo for touch screens (package of 5).TID-STY
BWT-840000422
TacticID Carrying CaseTacticID hard plastic rugged carrying case.
BWT-840000428
Wireless RouterWireless, battery-powered portable router; 3G/4G connectivity.
BWT-840000429
TacticID-N shaft protection cap (Black)TacticID-N and TacticID-N Plus shaft protection cap (Black).TID-CAP-N
BWT-840000433
O-ring replacement kit for NanoRam instrumentsNanoRam O-ring replacement kit – includes: O-rings, ID 9.00 mm, x15; O-Rings, ID 10.00 mm x15; O-rings, ID 13.00 mm x10 for the shaft in handheld Raman instruments.
BWT-840000463
BAC151x probe adapterBAC151x Probe Adaptor to connect B&W Tek Lab grade Raman probes to BAC151x Video microscope sampling system. Remove the standard shaft and distance regulator, to use the adaptor and connect the probe head to the video microscope. 3 adaptors per pack.
BWT-840000481
NanoRam immersion shaft protective sleeve, package of 49Disposable, protective sleeve for the NanoRam Immersion Probe model NR2-IMP, package of 49.
BWT-840000482
NanoRam immersion shaft protective sleeve, package of 490Disposable, protective sleeve for the NanoRam Immersion Probe model NR2-IMP, package of 490.
BWT-840000491
TacticID Right-Angle AdapterTacticID Right-Angle Adapter.
BWT-840000498
Disposable Battery CartridgeTacticID battery cartridge for use with six type 123A disposable batteries (e.g. Surefire). Batteries not included.
BWT-840000524
TacPacTM AdapterSERS analysis adapter for use with TacPac™-P SERS substrates.
BWT-840000528
TacPacTM Kit for TacticID-N PlusTAP-KIT-T is a SERS Analysis kit for use with the TacticID-N Plus for Raman signal amplification and fluorescence reduction of hard-to-measure samples. This kit includes a black pouch, Tweezer, SERS Analysis Adaptor, and 25 SERS substratesSERS analysis kit for use with Raman handheld spectrometers from B&W Tek. For Raman signal amplification and fluorescence reduction of hard-to-measure samples. For use with 785 nm laser excitation. Includes: tweezers, TacPac adapter, 25 SERS strips.TAP-KIT-T
BWT-840000603
Pouch for TacticID AdaptersTacticID (785 nm) Pouch for Adapters
BWT-840000629
Battery Charging CradleLithium-ion battery charging cradle.
BWT-840000655
Sterilized NanoRam Immersion Shaft Protective SleeveSterilized disposable, protective sleeve for the NanoRam Immersion Probe model NR2-IMP; package of 490.
BWT-840000669
TacticID Car ChargerCar charger for TacticID-N Plus.
BWT-840000679
Raman Zoom Lens (20-60 mm)Zoom lens for our BAC100/BAC102 fiber-optic Raman probes. Working distance is adjustable from 20 mm to 60 mm. Suitable for a Raman excitation range from 500 nm to 850 nm.
BWT-840000680
Raman Zoom Lens (60-600 mm)Long-working-distance zoom lens for BAC100/BAC102 fiber-optic Raman probes. Working distance is adjustable from 60 mm to 600 mm. Suitable for a Raman excitation range from 500 nm to 850 nm.
BWT-840000681
Raman Stand-off Lens (0.6-6 m)A telescope Stand-off lens for BAC100/BAC102 fiber-optic Raman probes. Wide zoom range for sample measurement ranges from 0.6 meters to 6 meters. Suitable for a Raman excitation range from 500 nm to 850 nm.RTS202-VIS-NIR
BWT-840000711
Raman Zoom Lens (20-60 mm)Zoom lens for our BAC100/BAC102 fiber-optic Raman probes. Working distance is adjustable from 20 mm to 60 mm. Suitable for a Raman excitation range from 785 nm to 1064 nm.
BWT-840000712
Raman Zoom Lens (60-600 mm)Long-working-distance zoom lens for BAC100/BAC102 fiber-optic Raman probes. Working distance is adjustable from 60 mm to 600 mm. Suitable for a Raman excitation range from 1000 nm to 1100 nm.
BWT-840000858
USB cableUSB cable supporting micro USB port up to type A USB 2.0.
BWT-840000861
Micro USB flash driveTacticID micro USB flash drive.
BWT-840000881
NanoRam Contact ProbeNanoRam accessories: 0.5” outer diameter x 150 mm L (5.9”) – Raman contact probe accessory for NanoRam. Rugged 316 stainless steel shaft.
BWT-840000911
TacticID Large Carrying CaseCarrying case for TacticID Mobile.
BWT-840000912
O-ring replacement kit for handheld Raman instrumentsHandheld Raman O-ring replacement kit –(for shaft only).Kit includes: O-Ring#1 ID 9.00 mm x15 and O-Ring#2 ID 10.00 mm x15 (TacticID-N Plus, TacticID Mobile, and NanoRam-1064).TID-ORK
BWT-840000934
Polystyrene Reference for QTRamPolystyrene reference for QTRam.QTR-PCC
BWT-840000940
QTRam Optics and Sample Holder Set – 2 mmSet of 2 mm excitation aperture, collection aperture, large round sample holder and large square sample holder for QT-Sampler.
BWT-840000941
QTRam Optics and Sample Holder Set – 4 mmSet of 4 mm excitation aperture, collection aperture, large round sample holder and large square sample holder for QT-Sampler.
BWT-840000942
QTRam Optics and Sample Holder Set – 6 mmSet of 6 mm excitation aperture, collection aperture, large round sample holder and large square sample holder for QT-Sampler.
BWT-840000943
QTRam Optics and Sample Holder Set – 8 mmSet of 8 mm excitation aperture, collection aperture, large round sample holder and large square sample holder for QT-Sampler.
BWT-840000948
USB OTG Host CableUSB OTG host cable for data transmission between a USB flash drive and a handheld system.
BWT-840000949
Large Spot AdapterThe large-spot sampling adapter is designed for use with Metrohm handheld Raman systems, providing a larger spot size and increased sampling depth to minimize the risk of sample burning, particularly for sensitive or dark-colored samples. Additionally, this adapter supports see-through capabilities when used with devices compatible with see-through software.TID-STA
BWT-840000964
Raman Video Micro-Sampling Head (785 nm)Video microscope sampling system head for use with B&W Tek's lab and industrial Raman probes. With coaxial LED illuminator for target alignment and video camera for sample observation. Compatible with standard microscope objectives. Probe not included, available separately. Objective lens not included, available separately. 785 nm configuration.
BWT-840000965
Raman Video Micro-Sampling Head (532 nm)Video microscope sampling system head for use with B&W Tek's lab and industrial Raman probes. With coaxial LED illuminator for target alignment and video camera for sample observation. Compatible with standard microscope objectives. Probe not included, available separately. Objective lens not included, available separately. 532 nm configuration.
BWT-840000966
Raman Video Micro-Sampling Head (532/785 nm dual)Video microscope sampling system head for use with B&W Tek's lab and industrial Raman probes. With coaxial LED illuminator for target alignment and video camera for sample observation. Compatible with standard microscope objectives. Probe not included, available separately. Objective lens not included, available separately. Dual 532/785 nm configuration.
BWT-840000969
Handheld Raman 1064 Immersion ProbeHandheld Raman Spectrometer 1064 accessory:. Contact immersion probe, 6” length, working distance approx. 1 mm, operating pressure up to 2 bar at room temperature.NRX-CTP-IMP
BWT-840000970
Handheld Raman large bottle adapter (1064)Handheld Raman Spectrometer 1064 accessories: Large bottle adapter with 10 mm working distance.NRX-BSA
BWT-840000980
TacticID Plus ManualsTacticID Plus Product Manual Set including Quick Reference Guide and TID Installation Instructions.
BWT-840000984
Raman Video Micro-Sampling Head (1,064 nm)Video microscope sampling system head for use with B&W Tek's lab and industrial Raman probes. With coaxial LED illuminator for target alignment and video camera for sample observation. Compatible with standard microscope objectives. Probe not included, available separately. Objective lens not included, available separately. 1064 nm configuration.
BWT-840001119
Focus adaptorSTRam 785 nm focus adaptor.RST-FA-785
BWT-840001120
Light shield accessory for STRamLight shield accessory for STRam.RST-LS
BWT-840001121
Focus adaptorSTRam-1064 nm focus adaptor.RST-FA-1064
BWT-840001122
Surface regulator for ST probeSurface regulator for ST probe.RST-SR
BWT-840001123
Bluetooth 1D barcode scannerBluetooth 1D barcode scanner for use with BWID software operating a portable Raman instrument
BWT-840001124
TacPac sample preparation kit (package of 25)SERS analysis sample preparation kit for use with Raman handheld spectrometers from B&W Tek. For Raman signal amplification and fluorescence reduction of hard-to-measure samples. For use with 785 nm laser excitation. Disposable plastic single-use laboratory spatula, pipettes and PP graduated microcentrifuge tubes (2 ml) used to prepare samples for testing with TacPac™ SERS. Package of 25 SERS substrates included.TAP-SAM25
BWT-840001125
TacPac sample preparation kit (package of 50)SERS analysis sample preparation kit for use with Raman handheld spectrometers from B&W Tek. For Raman signal amplification and fluorescence reduction of hard-to-measure samples. For use with 785 nm laser excitation. Disposable plastic single-use laboratory spatula, pipettes and PP graduated microcentrifuge tubes (2 ml) used to prepare samples for testing with TacPac™ SERS. Package of 50 SERS substrates included.TAP-SAM50
BWT-840001126
TacPac SERS substrate (package of 25)Performance grade flexible and sensitive SERS substrates in strip form for dip or liquid pipette sample techniques - 25 pack.TAP-P25
BWT-840001127
TacPac SERS substrate (package of 50)Performance grade flexible and sensitive SERS substrates in strip form for dip or liquid pipette sample techniques - 50 pack.TAP-P50
BWT-840001153
QT-Sampler carrying caseLightweight black polycarbonate carrying case for QT-Sampler module. Watertight, crushproof, and dustproof with cube foam fitting.CCRM QT-Sampler
BWT-840001154
Shoulder bag for HH Raman SeriesShoulder bag for TacticID series. Constructed with 1000d heavy duty fabric, multiple tactical pouches and compartment designed for rugged use and hard wearing.. Compatible with all TacticID products and NanoRam products. For transportation purposes only.TID-SBG
BWT-840001177
Aperture Removal ToolAperture removal tool for easy interchanging different apertures for optimal Raman spot size for transmission Raman with QT-Sampler.TOOL-APERTURE
BWT-840001178
Carrying Case for i-Raman Plus, i-Raman EX and GemRam systems.Carrying Case for i-Raman, i-Raman Plus, i-Raman EX and GemRam systems. This is black soft carrying case with extendable handle, wheels and custom cut foam (27 to 28” case length) for safe, convenient instrument transport. (Model CCRM-GEMRAM)
BWT-840001191
Type C to Type A USB cableType-C to Type-A USB cable. Compatible with TacticID Mobile.HHX-USB
BWT-840001192
TacticID Mobile Power Adaptor with international plugsPower adaptor 15V 3.6A DC. Plugs for US, EU, UK and AU included. Compatible with TacticID Mobile.HHX-PWA
BWT-840001193
USB drive containing TacticID Mobile User ManualsUSB drive containing TacticID Mobile User Manual; Includes both USB type-A connector and USB type-C connector, and can be used for OTG functions.HHX-USB-OTG
BWT-840001194
TacticID Mobile Power BankPower bank (battery pack) for TacticID Mobile. Compatible with the TacticID Mobile unit and the TacticID Mobile power adaptor for charging purposes.HHX-PWB
BWT-840001202
Hastelloy immersion shaft for 785nm Raman probeRIS100-HS-785-08: Hastelloy immersion shaft for BAC102/BAC100B Raman probes with excitation wavelength 785nm. Features a 0.5" (12.7 mm) O.D. x 8" (203.2 mm) L Hastelloy C-276 shaft and a gold- sealed sapphire ball lens. Working distance 0.4 mm in air, 0.6 mm in water. Shaft operating temperature is up to 250 degrees C, pressure up to 4000 psi. Shaft must be purchased with B&W Tek Raman probe.RIS100-HS-785-08
BWT-840001204
Hastelloy immersion shaft for 532nm Raman probeRIS100-HS-532-08: Hastelloy immersion shaft for BAC102/BAC100B Raman probes with excitation wavelength 532 nm. Features a 0.5" (12.7 mm) O.D. x 8" (203.2 mm) L Hastelloy C-276 shaft and a gold- sealed sapphire ball lens. Working distance 0.4 mm in air, 0.6 mm in water. Shaft operating temperature is up to 250 degrees C, pressure up to 4000 psi. Shaft must be purchased with B&W Tek Raman probe.RIS100-HS-532-08
BWT-840001223
USB-C car charger for TacticID MobileUSB-C Car Charger for TacticID Mobile. Includes a dedicated USB-C Cable for fast charging inside a vehicle. Model HHX-CCA
BWT-840001283
QT-SamplerThe QT-Sampler is an accessory for transmission Raman measurements, enabling content uniformity testing of pharmaceutical tablets. Compatible with i-Raman Prime 785S and H models. Apertures and sample holders are sold separately.
CABLE.BNC.50
50 cm BNC cable50 cm BNC cable for diagnostics purposes.
CABLE.MONITOR
Monitor cable for N series AutolabMonitor cable for modular Autolab systems, providing connections for external equipments (Potential output (Eout), Current output (iout) and Potential input (Ein)).
CABLE.MONITOR4
Monitor cable for PGSTAT101Monitor cable for PGSTAT101, providing connections for analog outputs (Eout, iout and Vout) and input (Vin)
CABLE.PWR
Power cableStandard power cable for Autolab instruments and accessories.
Cat-empty
Cat-emptyCBL.BSTR20A.DIO
Booster20A digital interface cableDigital control cable for the Autolab Booster20A.
CBL.BSTR.DIO
Booster10A digital interface cableDigital control cable for the Autolab Booster10A.
CBL.MONIT.MAC.204.S
Monitor cable for M101/M204/PGSTAT204Monitor cable for M101/M204/PGSTAT204, providing connections for analog outputs (Eout, iout and Vout) and input (Vin).
CBL.MONITOR7.S
Monitor cable for Autolab 7 seriesMonitor cable for 7 series (serial number starting with AUT7xxxx) modular Autolab systems, providing connections for external equipment (Potential output (Eout), Current output (iout) and Potential input (Ein)).
CBL.MONITOR8.S
Monitor cable for Autolab 8 seriesMonitor cable for 8 series (serial number starting with AUT8xxxx) modular Autolab N systems, providing connections for external equipment (Potential output (Eout), Current output (iout) and Potential input (Ein)).
CBL.MONITOR.PG101.S
Monitor cable for PGSTAT101Monitor cable for PGSTAT101, providing connections for analog outputs (Eout, iout and Vout) and input (Vin).
CBL.PWR.XXX
Power cableStandard power cord to plug the VIONIC instument into the power grid. The type of the inclued power cord is region specific.
CBL.USB
Standard USB cableStandard USB cable for Autolab instruments.
CELLCBL.101
Cell cable (CE, RE, S, WE, GND) for PGSTAT101Standard cell cable, 1.5 m, with connection for counter electrode (CE), reference electrode (RE), sense electrode (S), working electrode (WE) and ground for PGSTAT101.
CELLCBL.30.RE.S
Cell cableStandard cell cable, 1.5 m, with connection for reference electrode (RE) and sense electrode (S).
CELLCBL.30.WE.S
Cell cableStandard cell cable, 1.5 m, with connection for counter electrode (CE), working electrode (WE) and ground.
CELLCBL.M101.204
Cell cableStandard cell cable, 1.5 m, with connection for counter electrode (CE), reference electrode (RE), sense electrode (S), working electrode (WE) and ground for M101/M204/PGSTAT204.
CORR.1LCELL.S
1 L corrosion cellThe Autolab 1 L corrosion cell is suitable for corrosion measurements according to ASTM standards. The cell has a thermostatic jacket for temperature control and a series of openings for counter electrodes, pH sensor, thermometer, Luggin-Haber capillary and gas purging.The 1 ll corrosion cell has been designed to measure the corrosion properties samples with a diameter ranging from 14.7 mm to 16 mm and a thickness from 0.5 mm up to 4 mm. The exposed surface is 1 cm² and the seals are made out of natural rubber.
CORR.1LHLD
1 L corrosion cell sample holderCORR.1LSTL
1 L corrosion cell SS electr. (MOQ=2)CORR250.CELL.S
0.250 L Corrosion CellComplete cell for corrosion measurements, 250 mL.
CORR.CELL.S
Corrosion cellThe Autolab 400 ml corrosion cell is suitable for corrosion measurements. The cell has a thermostatic jacket for temperature control and a series of openings for counter electrodes, pH sensor, thermometer, Luggin-Haber capillary and gas purging.The 400 ml corrosion cell has been designed to measure the corrosion properties of 14 mm diameter and 1 mm thick flat circular samples immersed in an electrolyte. The exposed surface area is 0.785 cm². The holder is made of Delrin with a Viton seal.
CORR.THERM
ThermometerGlass thermometer (-20 °C to 150 °C).
CUV-UV/VIS
Cuvette holderThe cuvette holder provides the possibility to carry out transmission measurements using a classic 10 mm glass or quartz cuvette. The holder is fitted with two SMA-905 connectors with collimating lenses built-in. A cover is provided to shield the cuvette from environmental light.
DIO12.SPEC.TRIGGER.S
Spectroelectrochemistry trigger cable for DIO12 instrumentsTriggering cable required for synchronized spectroelectrochemical measurement in combination with Autolab instruments equipped with a DIO12 interface. This cable provides a direct connection between the digital input/output (DIO) port of the Autolab and the Autolab light source and Autolab spectrophotometer. The connection to the light source enables the remote control of the shutter and the connection to the spectrophotometer provides the possibility to synchronize the acquisition of spectroscopy data with the acquisition of electrochemical data.
DIO48.SPEC.TRIGGER.S
Spectroelectrochemistry trigger cable for DIO48 instrumentsTriggering cable required for synchronized spectroelectrochemical measurement in combination with Autolab instruments equipped with a DIO48 interface. This cable provides a direct connection between the digital input/output (DIO) port of the Autolab and the Autolab light source and Autolab spectrophotometer. The connection to the light source enables the remote control of the shutter and the connection to the spectrophotometer provides the possibility to synchronize the acquisition of spectroscopy data with the acquisition of electrochemical data.
DRP-4MMHCAST8
Eight channel boxed connector for μStat-i MultiXEight channel boxed connector suitable to improve the set-up confirguration acting as an interface between uStat-i MultiX and screen-printed electrodes.
DRP-ALCRUCIBPACK
Aluminum crucibles (5 x 1.6 mm ; 5 x 4.2 mm) for DRP-RAMANCELLAluminum crucibles (5 x 1.6 mm ; 5 x 4.2 mm) to be used in combination with RAMANCELL to perform Raman measurements over solid samples.
DRP-BANANA4TO2MM
Banana connector 4 mm to 2 mm (includes 4 units)Adaptor from 4 mm male banana connections to 2 mm female connections
DRP-BIASTIR
Stirrer for BIASPEStirrer for batch injection analysis cells. The stirring rod in Teflon allows a precise control of the rotation rate
DRP-BICASTDIR
µStat cable connector for dual screen-printed electrodesConnector that acts as an interface between our dual screen-printed electrodes and Metrohm DropSens instruments and some accessories.
DRP-BIDSC4MM
Boxed connector for dual screen-printed electrodesConnector that functions as an interface between DropSens dual screen-printed electrodes (SPEs) and interdigitated electrodes with any type of potentiostat.
DRP-BIDSC-FET
Connector for Field-effect transistor ElectrodesBoxed connector that acts as an interface between ref. AUFET30 electrodes and any kind of potentiostat
DRP-BINP-PUR
Purified Bismuth Nanoparticles SolutionDRP-CABSTAT
mStat Cable connector (2WE) for conventional electrodesFlexible cable connector that acts as an interface between DropSens bipotentiostats and conventional electrodes
DRP-CAC4MMH
Cable connector with 4mm banana connectors for screen-printed electrodesFlexible cable that act as an interface between ceramic substrate SPEs and any kind of potentiostat
DRP-CACIDEMEA
Cable connector for interdigitated electrodes with AUX and REFFlexible cable that act as an interface between interdigitated electrodes in glass with CE and RE and any kind of potentiostat.Cable connector for interdigitated electrodes with CE and RE quantity
DRP-CAC-NTC
Cable connector for C110-NTC screen-printed electrodesFlexible cable that act as an interface between ref.C110-NTC SPEs and any kind of potentiostat
DRP-CASTDIR
µStat cable connector for screen-printed electrodesConnects single (1 WE) SPEs to μStat 200, μStat 300, μStat 400, μStat 4000/P, μStat 8000/P, μStatECL, SpectroECL and the SPELEC line of instruments.
DRP-CAST-P
mStat Cable connector for plastic substrate screen-printed electrodesFlexible cable that act as an interface between plastic substrate SPEs and DropSens potentiostats
DRP-CAST-TLFCL
μStat cable for TLFCL format SPEsCable connector from μStat instruments and the SPELEC line of instruments to TLFCL format SPEs
DRP-CDIOCABLE400
I/O Cable for µStat400DRP-CDIOCABLEMULTI
DIO cable for mStat-i MultiX (requires DRP-CDIOINTERMULTI)DRP-CELL-IDE
Cell for interdigitated electrodesCells for batch analysis with interdigitated electrodes (IDE). Suitable for working with volumes up to 3-8 ml and manufactured in different materials that will allow you to work even with organic solvents.
DRP-CELL-IDE-PEEK
Cell for interdigitated electrodes in PEEKDRP-CFLWCL-CONICPEEK
Cell in PEEK for screen-printed electrodes - Conical wellDRP-CFLWCL-WE-PEEK
Flow Cell in PEEK - Only working electrodeDRP-CONNECTOR96X-SYN
Pack including CONNECTOR96X and SYNCONN96XDRP-CUNP-PUR
Purified Copper Nanoparticles SolutionDRP-DIOC200SYNC96
PIO Cable suitable to connect the SYNCONN96X with STAT200Cable connector suitable to connect SYNCONN96X with STAT200 for automation of the electrochemical ELISA System
DRP-DIOC400SYNC96
PIO Cable suitable to connect the SYNCONN96X with STAT300 and STAT400Cable connector suitable to connect SYNCONN96X with STAT300 and STAT400 for automation of the electrochemical ELISA System
DRP-DIOC8000SYNC96
PIO Cable suitable to connect the SYNCONN96X with STAT4000/P and 8000/PCable connector suitable to connect SYNCONN96X with STAT4000/P and 8000/P for automation of the electrochemical ELISA System
DRP-DIOMULTISYNC96
DIO cable for connecting mStat-i MultiX with SYNCONN96X (requires DRP-CDIOINTERMULTI)DRP-DSC4MM
Boxed connector for screen-printed electrodesConnector that functions as an interface between DropSens screen-printed electrodes (SPEs) and interdigitated electrodes with any type of potentiostat.
DRP-DTIPD1000
Tips for Electronic Micropipette P1000M (96 units)Pipette tip boxes to be used with P1000M micropipette included in BIASPE10 cell
DRP-DTIPD200
Tips for Electronic Micropipette P200M (96 units)Pipette tip boxes to be used with P200M micropipette included in BIASPE02 cell
DRP-ECLPHOTODIODCELL
Photodiode cell for electrochemiluminescence measurementsCell for screen-printed electrodes to perform electrochemiluminescence measurements. This ABS cell includes a Silicon photodiode with preamp with a spectral response range 340 - 1100 nm and peak sensitivity wavelength of 960nm. This cell should be used in combination with µStat ECL or µStat SpectroECL electrochemiluminiscence instruments.
DRP-FLKIT
Fluorescence kitKit for performing fluorescence experiments composed by 2 x short optical fibers (600 µm) ended in SMA 905 connections, 2 x optical filters one of 230-500 nm and other for 300-750 nm wavelength and 2 x holders for the filters.Complete your set up by adding the required excitation light depending on the range of interest (ref. LEDUV275, LEDVIS395 or LEDRGB).For performing fluorescence spectroscopy experiments coupled to spectroelectrochemistry (ref. SPELEC) with SPEs acquire the suitable reflection probe (RPROBE) and reflection cell (REFLECELL).
DRP-FLKITSPE
Fluorescence Kit for screen-printed electrodesKit designed for those researchers interested in performing fluorescence spectroscopy experiments with screen-printed electrodes (Includes 2 x optical fibers (600 um) ended in SMA 905 connections, 2 x optical filters 230-500 and 300-750 nm 2 x holders, 1 x RPROBE-VIS-UV and 1 x REFLECELL).
DRP-FLWCL-IDE-PEEK
Flow Cell in PEEK for Interdigitated ElectrodesDRP-FOLSOL-AQU-1ML
Fullerenol solution-Aqueous-1 mLDRP-FOLSOL-AQU-5ML
Fullerenol solution-Aqueous-5 mLDRP-GQD
Graphene Quantum DotsDRP-HCELL
H-cell for hydrogen permeation experimentsThis cell consists of two electrochemical compartments in which hydrogen is produced in the load cell and detected in the oxidation cell. It can be used to evaluate hydrogen uptake, permeability and transport in a variety of metal membranes, among other applications.
DRP-HCELLKIT
Hydrogen permeation kit additional cell to be acquired onlyDRP-I-BICAST
i-µStat cable connector for dual screen-printed electrodesConnector that acts as an interface between our dual screen-printed electrodes and Metrohm DropSens potentiostats.
DRP-I-CABSTAT
μStat Cable connector for μStat-i 400 and conventional electrodesμStat Cable connector for μStat-i 400 and conventional electrodes
DRP-I-CABSTAT1
μStat Cable connector for μStat-i 400s and conventional electrodesμStat Cable connector for μStat-i 400s and conventional electrodes
DRP-I-CAST
i-µStat Cable Connector for Screen-Printed ElectrodesConnector that act as an interface between our Screen-Printed Electrodes and Metrohm DropSens potentiostats.
DRP-IRNP-COL
Colloidal Iridium Nanoparticles SolutionDRP-I-VKIT
Instruments verification kits for µStat-i-400 and µStat-i-400sKit for verifying the correct performance of instruments: μStat-i 400s, μStat-i 400s and μStat-i MultiX
DRP-LEDRGB
LED light red green blueLED light for performing fluorescence spectroscopy experiments coupled to spectroelectrochemistry
DRP-LEDUV275
LED light-UV 275 nmLED light for performing fluorescence spectroscopy experiments coupled to spectroelectrochemistry
DRP-LEDVIS395
LED light-VIS 395 nmLED light of 395 nm wavelength
DRP-PTAUNINW-LO-1.5
Platinum Gold Nickel Nanowires - Pt (1.5 μm) - Au (5 μm) - Ni (2 μm)DRP-PTAUNINW-SH-1.5
Platinum Gold Nickel Nanowires - Pt (1.5 μm) - Au (2 μm) - Ni (2 μm)DRP-PTGRID-TRANSCELL
Spectroelectrochemical cell with conventional electrodesThis cell allows mass electrolysis to be easily performed while transmission measurements (1 mm optical path) are acquired in the solution close to the electrode.
DRP-RAMANCELL-C
Raman spectroelectrochemical cell for conventional electrodesCell in PEEK for Raman spectroelectrochemical measurements. Designed be used with ref. RAMANPROBE and conventional Metrohm electrodes.
DRP-RAMANCELL-M
Raman Cell for microscopeCell for spectroelectrochemical applications in combination with a microscope, allowing the laser focus onto the surface of the working electrode, obtaining valuable information while the electrochemical process takes place.
DRP-RAMANCELLS-U3
PEEK spacers for DRP-RAMANCELL (0.5, 1 and 1.5 mmDRP-RAMANPROBE638
Raman probe 638Reflection probe designed to be used with a single excitation 638 nm wavelength (up to 300 mW). Suitable to work with DropSens Raman cell for screen-printed electrodes (ref. RAMANCELL), Raman cell for conventional electrodes (ref. RAMANCELL-C) or with any conventional Raman set-up.
DRP-REFLECELL-C
UV-Vis/NIR spectroelectrochemical cell for conventional electrodesCell for UV-Vis/NIR spectroelectrochemical measurements with conventional electrodes.
DRP-RHNP-COL
Colloidal Rhodium Nanoparticles SolutionDRP-RPROBE-VIS-NIR
Reflection probe VIS-NIRReflection probe VIS-NIR designed to perform reflection experiments.
DRP-SBNP-PUR
Purified Antimony Nanoparticles SolutionDRP-SMAFC
SMA-FC adapterDRP-SMAFC105
SMA -FC fiber adapter 105 umDRP-SMAFC200
SMA -FC fiber adapter 200 umDRP-SNNP-PUR
Purified Tin Nanoparticles SolutionDRP-SPECELL4W-U20
Disposable well cell for 4W format screen-printed electrodesElectrochemical cells for easy and fast handling of 4W format screen-printed electrodes. Take advantage of their disposable, lightweight and quick-assembly design to handle large droplets and ensure good surface coverage and sample sealing.
DRP-SPECELL8W-U20
Disposable well cell for 8W format screen-printed electrodesElectrochemical cells for easy and fast handling of 8W format screen-printed electrodes. Take advantage of their disposable, lightweight and quick-assembly design to handle large droplets and ensure good surface coverage and sample sealing.
DRP-SPECELL8X-U20
Disposable well cell for 8X format screen-printed electrodesElectrochemical cells for easy and fast handling of 8X format screen-printed electrodes. Take advantage of their disposable, lightweight and quick-assembly design to handle large droplets and ensure good surface coverage and sample sealing.
DRP-SPECELL-U75
Disposable well cell for screen-printed electrodesElectrochemical cells for easy and fast handling of screen-printed electrodes. Take advantage of their disposable, lightweight and quick-assembly design to handle large droplets and ensure good surface coverage and sample sealing.
DRP-SYNCONN96X
Automatic controller for CONNECTOR96XSYNCONN96X is an automatic controller of CONNECTOR96X that allows executing the assays sequentially without the need of employing the manual rotating selectors at the CONNECTOR96X.
DRP-TFIBER-VIS-NIR
Transmission fiber VIS-NIRTransmission fiber VIS-NIR designed to perform transmission experiments
DRP-TLCELL
Thin-layer cell for screen-printed electrodesThin-layer electrochemical cell for screen-printed electrodes with 2mm banana direct connections
DRP-TLFCELL
Thin-layer flow electrochemical cellThin film flow cell for use with ceramic SPEs with the detection zone in the center of the strip. It allows the study of different parameters under flow conditions.
DRP-TLFCLRAMANCELL
Raman flow-cell for Thin-layer flow-cell integrated screen-printed electrodesDRP-TRANSPACK-VIS-UV
Pack for transmission experiments with SPEs (Includes: 1 x TRANSCELL, 1 x CLENS, 1 x TFIBER-VIS-UV, 1 x RPROBE-VIS-UV and 1 x CAST-P)Pack designed for those researchers insterested in performing transmision UV-VIS experiments with screen-printed electrodes and SPELEC instrument
DRP-TUBEB-U12
PVC tube for peristaltic pump – 1,651 mm inner diameterPVC tube for peristaltic pump – 1.651 mm inner diameter
DRP-TUBEO-U12
PVC tube for peristaltic pump – 0,889 mm inner diameterPVC tube for peristaltic pump – 0.889 mm inner diameter
DRP-TUBER-U12
PVC tube for peristaltic pump – 1,143 mm inner diameterPVC tube for peristaltic pump – 1.143 mm inner diameter
DRP-TUBEY-U12
PVC tube for peristaltic pump – 1,422 mm inner diameterPVC tube for peristaltic pump – 1.422 mm inner diameter
DRP-USBFLOATING
USB floating cableThe floating USB cable is a galvanic isolation accessory that connected to your instrument will allow you to work in “floating mode” instead of “grounded mode”
DRP-VKIT
Instruments verification kits for µStat 300 and µStat 400Kit for verifying the correct performance of instruments: μStat 300 and μStat 400
DRP-VKITECL
Instruments verification kits for µStat ECL and SpectroECLKit for verifying the correct performance of instruments: μStat ECL and SpectroECL. With this kit you will be able to perform electrochemical and optical verification.
DRP-VKITMULTI
Instruments verification kits for µStat 4000P, µStat 4000, µStat 8000P and µStat 8000Kit for verifying the performance of instruments: μStat4000P, μStat 4000, μStat 8000P and μStat 8000. You will be able to verify each independent channel and the multichannel mode of your equipment.
DRP-VKITSPELEC
Instruments verification kits for SPELEC and SPELEC1050Kit for verifying the performance of instruments: SPELEC and SPELEC 1050. With this kit, you will be able to perform electrochemical and optical verification.
DRP-VKITSPELECNIR
Instruments verification kit for SPELEC NIRKit for verifying the correct performance of SPELECNIR instrument. With this kit, you will be able to perform electrochemical and optical verification.
DRP-VKITSPELECRAMAN
Instruments verification kit for SPELEC RAMANKit for verifying the correct performance of SPELECRAMAN instrument. With this kit, you will be able to perform electrochemical and optical verification.
ECAT.COMPACT.S
ECAT compact packageMetrohm Autolab offers and ECAT compact package that offers electrochemical instrumentation and accessories with an industry-leading 3-year warranty as standard. With a compact PGSTAT204 equipped with a dual-mode bipotentiostat module.The Autolab ECAT compact package comes with free NOVA 2 software that provides built-in Levich and Koutecky – Levich analysis methods for fast and easy data analysis. Included in the package is also a Rotating Ring Disk Electrode (RRDE) that is high precision with an ultra-low noise electrode rotation from 100 to 10,000 RPM. A complete RRDE electrochemical cell is also included in the package.Possible applications include: electrocatalyst material testing, mechanistic information,: detection of intermediates via collection and shielding experiments (RRDE), electrochemical kinetics studies, mass-transport properties with forced convection conditions.This package offers high-quality standard measurements including those under forced convection conditions.
ECD.S
Low current amplifier moduleThe lowest current range available on the standard Autolab is 10 nA. At this current range, the Autolab has a current resolution of 30 fA. When doing measurements on micro-electrodes sometimes even higher resolution is needed. Originally designed for electrochemical detection in HPLC and FIA, the ECD module makes the measurement of such low currents possible.The ECD module provides 2 additional current ranges of 1 nA and 100 pA giving a minimum current resolution of 0.3 fA. The ECD module also has a built in third order Sallen-Key filter, with 3 RC-time constants that help to filter out noise.
ECI10M.S
High frequency impedance spectroscopyThe ECI10M extends the measurable range for electrochemical impedance spectroscopy to a maximum of 10 MHz.The ECI10M consists of a module, installed in the Autolab potentiostat/galvanostat and coupled to the FRA32M module and an external interface designed to be placed in close proximity of the electrochemical cell in order to minimize the effects from the electrode cables.The small form factor of the external interface allows measurements in a glove box or Faraday cage.The ECI10M uses the Automatic Amplitude Correction algorithm (AAC) to ensure that the amplitude applied on the cell corresponds to the required amplitude at all times, thus maximizing the resolution while respecting the linearity and stability conditions during the measurement.
ECN.S
Electrochemical noise moduleElectrochemical noise (ECN) is an in-situ technique for measuring these localized corrosion processes on bare or coated metal samples. During measurements with the ECN module no external perturbation (potential or current) is applied to the electrode. The potential and current signals are measured as a function of time.The accompanying analysis software allows the current and potential versus time data to be analyzed using Fast Fourier Transform (FFT). The software also provides several filtering and mathematical methods for treating electrochemical noise signals.
EQCM.CELL.S
EQCM complete cell including coverEQCM complete cell including cover
EQCM.MAC.204.S
Electrochemical Quartz Crystal Microbalance moduleThe EQCM module provides the means to perform Electrochemical Quartz Crystal Microbalance experiments. The EQCM module measures a mass change per unit area by recording the change in resonant frequency of a quartz crystal oscillator.Measurements in the sub μg/cm2 are possible. The EQCM can be fitted with 6 MHz, AT-cut crystals.The EQCM module is supplied with a suitable electrochemical cell, reference and counter electrode and two 6 MHz gold-coated crystals.
EQCM.S
Electrochemical Quartz Crystal Microbalance moduleThe EQCM module provides the means to perform Electrochemical Quartz Crystal Microbalance experiments. The EQCM module measures a mass change per unit area by recording the change in resonant frequency of a quartz crystal oscillator.Measurements in the sub μg/cm2 are possible. The EQCM can be fitted with 6 MHz, AT-cut crystals.The EQCM module is supplied with a suitable electrochemical cell, reference and counter electrode and two 6 MHz gold-coated crystals.
FAR.CAGE.LRG
Large Faraday CageThe Autolab Faraday cage has been designed to allow the users to protect their electrochemical cell setup from electro-magnetic interference from external sources such as computer monitors, other instruments in the lab or power lines.In many cases the main source of external electrical interference is the line frequency (50/60 Hz) which can corrupt electrochemical data, particularly when small signals are being measured. An earth terminal is available in the Faraday cage to connect to the Autolab to prevent ground loops.External dimensions: (WxDxH) 38x30x60 cm3
FAR.CAGE.LRG
Large Faraday CageThe Autolab Faraday cage has been designed to allow the users to protect their electrochemical cell setup from electro-magnetic interference from external sources such as computer monitors, other instruments in the lab or power lines.In many cases the main source of external electrical interference is the line frequency (50/60 Hz) which can corrupt electrochemical data, particularly when small signals are being measured. An earth terminal is available in the Faraday cage to connect to the Autolab to prevent ground loops. External dimensions: (WxDxH) 38x30x60 cm3
FAR.CAGE.S
Faraday CageThe Autolab Faraday cage has been designed to allow the users to protect their electrochemical cell setup from electro-magnetic interference from external sources such as computer monitors, other instruments in the lab or power lines.In many cases the main source of external electrical interference is the line frequency (50/60 Hz) which can corrupt electrochemical data, particularly when small signals are being measured. An earth terminal is available in the Faraday cage to connect to the Autolab to prevent ground loops.
FI20.S
Analog filter and integrator moduleThe FI20 filter and integrator module allows the Autolab users to do coulometric and chrono-coulometric experiments. The analog integrator gives you the possibility to measure charge instead of current and can be used both in cyclic voltammetry as well as in potential step experiments.With this module it is easy to separate the capacitive current from the faradaic current. In addition the integrator is effective in reducing signal noise by averaging it out.The third order Sallen-Key filter with selectable RC-times between 0 and 500 ms, can be used to filter out noise.The filter of the FI20 module is also useful in cases where the background noise (50 or 60 Hz for example) cannot be removed by using measures like a Faraday cage.
FLAT.CELL.S
Flat cellThe Autolab flat cell is a corrosion cell suitable for measurements on very large flat samples, up to 17 cm² in size. The cell is supplied with a reference electrode, a stainless steel counter electrode and a gas purging tube.
- 8.794.10128.794.1012Quick References 794 Basic Titrino, french
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- 8.794.10158.794.1015Quick References 794 Basic Titrino, spanish
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- 8.794.30038.794.3003Declaration of conformity 794 Basic Titrino, english
English
- 8.795.10018.795.1001Instructions for Use 795 KFT Titrino, german
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- 8.795.10028.795.1002Instructions for Use 795 KFT Titrino, french
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- 8.795.10058.795.1005Instructions for Use 795 KFT Titrino, spanish
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- 8.795.10118.795.1011Quick References 795 KFT Titrino, german
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- 8.795.10128.795.1012Quick References 795 KFT Titrino, french
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- 8.795.10158.795.1015Quick References 795 KFT Titrino, spanish
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- 8.7951.0218.7951.021Short Instructions for Use 795 KFT Titrino, german
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- 8.795.10228.795.1022Short Instructions for Use 795 KFT Titrino, french
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- 8.795.10238.795.1023Short Instructions for Use 795 KFT Titrino, english
English
- 8.795.10258.795.1025Short Instructions for Use 795 KFT Titrino, spanish
English
- 8.795.30038.795.3003Declaration of conformity 795 KFT Titrino, english
English
- 8.796.10018.796.1001Instructions for Use 796 Titroprocessor, german
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- 8.796.10238.796.1023Tutorial 796 Titroprocessor, english
English
- 8.796.30038.796.3003Declaration of conformity 796 Titroprocessor, english
English
- 8.797.09038.797.0903EU declaration of conformity for 797 VA Computrace Software 1.0
English
- 8.797.09238.797.0923Declaration of conformity for 797 VA Computrace Software 1.2, English
English
- 8.797.09338.797.0933Declaration of conformity for 797 VA Computrace Software 1.3, English
English
- 8.797.30018.797.3001Declaration of conformity 797 VA Computrace
English
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- 8.798.10018.798.1001Instructions for Use 798 MPT Titrino, german
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- 8.798.10028.798.1002Instructions for Use 798 MPT Titrino, french
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- 8.798.10058.798.1005Instructions for Use 798 MPT Titrino, spanish
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- 8.798.10118.798.1011Quick References 798 MPT Titrino, german
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- 8.798.10128.798.1012Quick References 798 MPT Titrino, french
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- 8.798.10158.798.1015Quick References 798 MPT Titrino, spanish
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- 8.798.10218.798.1021Short Instructions for Use 798 MPT Titrino, german
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- 8.798.10228.798.1022Short Instructions for Use 798 MPT Titrino, french
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- 8.798.10238.798.1023Short Instructions for Use 798 MPT Titrino, english
English
- 8.798.10258.798.1025Short Instructions for Use 798 MPT Titrino, spanish
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- 8.798.30038.798.3003Declaration of conformity 798 MPT Titrino, english
English
- 8.799.10018.799.1001Instructions for Use 799 GPT Titrino, german
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- 8.799.10028.799.1002Instructions for Use 799 GPT Titrino, french
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- 8.799.10058.799.1005Instructions for Use 799 GPT Titrino, spanish
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- 8.799.10118.799.1011Quick References 799 GPT Titrino, german
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- 8.799.10128.799.1012Quick References 799 GPT Titrino, french
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- 8.799.10158.799.1015Quick References 799 GPT Titrino, spanish
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- 8.799.10218.799.1021Short Instructions for Use 799 GPT Titrino, german
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- 8.799.10228.799.1022Short Instructions for Use 799 GPT Titrino, french
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- 8.799.10238.799.1023Short Instructions for Use 799 GPT Titrino, english
English
- 8.799.10258.799.1025Short Instructions for Use 799 GPT Titrino, spanish
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- 8.799.30038.799.3003Declaration of conformity 799 GPT Titrino, english
English
- 8.800.30018.800.3001Declaration of conformity 800 Dosino, English
English
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- 8.801.30018.801.3001Declaration of Conformity for 801 Stirrer
English
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- 8.802.30018.802.3001Declaration of conformity 802 Stirrer
English
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- 8.803.30038.803.3003Declaration of conformity 803 Ti Stand
English
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- 8.804.30018.804.3001Declaration of Conformity for 804 Ti Stand
English
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- 8.805.30018.805.3001Declaration of conformity 805 Dosimat
English
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- 8.806.30018.806.3001EU declaration of Conformity for 806 Exchange Unit
English
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- 8.807.30018.807.3001EU declaration of Conformity for 807 Dosing Unit
English
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- 8.808.13018.808.1301Instructions for Use PC Control 1.0, german
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- 8.808.13028.808.1302Instructions for Use PC Control 1.0, french
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- 8.808.15018.808.1501Tutorial for PC Control 1.0, german
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- 8.808.15028.808.1502Tutorial for PC Control 1.0, french
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- 8.808.15038.808.1503Tutorial for PC Control 1.0, english
English
- 8.808.30338.808.3033Declaration of conformity 808 Titrando, english
English
- 8.809.30338.809.3033Declaration of conformity 809 Titrando, english
English
- 8.810.30018.810.3001Declaration of conformity 810 Sample Processor
English
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- 8.812.10018.812.1001Instructions for Use 812 Valve Unit, german
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- 8.813.10018.813.1001Instructions for Use 813 Compact Autosampler, German
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- 8.813.30038.813.3003Declaration of conformity 813 Compact Autosampler, English
English
- 8.814.30038.814.3003Declaration of conformity 814 USB Sample Processor
English
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- 8.815.17068.815.1706Leaflet "Ferrite cores" for 814/815 (Robotic) USB Sample Processor, German/French/English
English
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- 8.815.30038.815.3003Declaration of conformity 815 Robotic USB Sample Processor XL
English
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- 8.816.10018.816.1001Instructions for Use 816 IC Eluent Selector, german
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- 8.818.10218.818.1021Instructions for Use 818 IC Pump, german
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- 8.818.30038.818.3003Declaration of conformity 818 IC Pump, english
English
- 8.819.10118.819.1011Manual for 819 IC Detector/820 IC Separation Center, German
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- 8.819.30038.819.3003Declaration of conformity 819 IC Detector, english
English
- 8.820.30038.820.3003Declaration of conformity 820 IC Separation Center, english
English
- 8.822.10118.822.1011Instructions for Use 822 Titration Curve Simulator, german
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- 8.822.10128.822.1012Instructions for Use 822 Titration Curve Simulator, french
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- 8.822.10158.822.1015Instructions for Use 822 Titration Curve Simulator, spanish
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- 8.822.30018.822.3001EU declaration of Conformity for 822 Titration Curve Simulator
English
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- 8.822.60018.822.6001Brochure: 822 Titration Curve Simulator
Metrohm instruments are known for their precision and reliability. Thanks to their robust construction they are hardly ever affected by external mechanical or electrical influences. Even though a malfunction can never be completely excluded, it is normally due to operator errors, faulty connections or third-party instruments. Should you ever suspect a fault in a Metrohm instrument, it is always advisable to localize the problem using fast and easy to perform diagnostic tests. These diagnostic tests require tools that are not readily found in the laboratory. The 822 Titration Curve Simulator is such a tool.
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- 8.823.30038.823.3003EU declaration of conformity 823 Membrane Pump Unit
English
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- 8.824.10018.824.1001Instructions for Use 824 Easy Sample Changer, German
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- 8.824.10028.824.1002Instructions for Use 824 Easy Sample Changer, French
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- 8.824.10058.824.1005Instructions for Use 824 Easy Sample Changer, Spanish
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- 8.824.11118.824.1111Quick References 824 Easy Sample Changer, German
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- 8.824.11128.824.1112Quick References 824 Easy Sample Changer, French
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- 8.824.11158.824.1115Quick References 824 Easy Sample Changer, Spanish
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- 8.824.30038.824.3003Declaration of conformity 824 Easy Sample Changer, English
English
- 8.825.09038.825.0903Declaration of conformity for 825 Lab Link + 825 Lab Link Server, english
English
- 8.825.10018.825.1001Instructions for Use 825 Lab Link, german
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- 8.826.30018.826.3001Declaration of conformity 826 pH mobile
English
- 8.827.12018.827.1201Quick reference guide for 826/827 pH meter, German
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- 8.827.12028.827.1202Quick reference guide for 826/827 pH meter, French
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- 8.827.12058.827.1205Quick reference guide for 826/827 pH meter, Spanish
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- 8.827.30018.827.3001Declaration of conformity 827 pH lab, english
English
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- 8.828.10018.828.1001Instructions for Use 828 IC Dual Suppressor, german
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- 8.828.10118.828.1011Supplement to Instructions for Use 828 IC Dual Suppressor, german
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- 8.828.10138.828.1013Supplement to Instructions for Use 828 ID Dual Suppressor, english
English
- 8.828.30038.828.3003Declaration of conformity 828 IC Dual Suppressor, english
English
- 8.830.10018.830.1001Instructions for Use 830 IC Interface, german
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- 8.830.30038.830.3003Declaration of conformity 830 IC Interface, english
English
- 8.831.10018.831.1001Instructions for Use 756/831 KF Coulometer, german
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- 8.831.10028.831.1002Instructions for Use 756/831 KF Coulometer, french
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- 8.831.10058.831.1005Instructions for Use 756/831 KF Coulometer, spanish
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- 8.831.10118.831.1011Quick References 756/831 KF Coulometer, german
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- 8.831.10128.831.1012Quick References 756/831 KF Coulometer, french
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- 8.831.10158.831.1015Quick References 756/831 KF Coulometer, Spanish
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- 8.831.30038.831.3003EU declaration of conformity 831 KF Coulometer
English
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- 8.832.10118.832.1011Short introduction 832 KF Thermoprep, german
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- 8.832.10128.832.1012Short introduction 832 KF Thermoprep, french
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- 8.832.10158.832.1015Short introduction 832 KF Thermoprep, spanish
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- 8.832.10218.832.1021Instrctions for Use 832 KF Thermoprep, german
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- 8.832.10228.832.1022Instructions for use 832 KF Thermoprep, french
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- 8.832.10258.832.1025Instructions for Use 832 KF Thermoprep, spanish
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- 8.832.30038.832.3003Declaration of conformity 832 KF Thermoprep, english
English
- 8.833.10018.833.1001Instructions for Use 833 IC Liquid Handling Unit, german
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- 8.833.30038.833.3003Declaration of conformity 833 IC Liquid Handling Unit, english
English
- 8.835.30238.835.3023Declaration of conformity 835 Titrando, english
English
- 8.836.30238.836.3023Declaration of conformity 836 Titrando, english
English
- 8.837.10018.837.1001Instructions for Use 837 IC Degasser, german
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- 8.837.30018.837.3001Declaration of conformity 837 IC Degasser
English
- 8.838.10118.838.1011Manual for 838 Advanced Sample Processor, German
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- 8.838.10128.838.1012Instructions for Use 838 Advanced Sample Processor, French
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- 8.838.13118.838.1311Installation Instruction 838 Advanced Sample Processor, German
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- 8.838.13278.838.1327Leaflet for installation 838 Advanced Sample Processor, German/English
English
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- 8.838.30038.838.3003EU declaration of conformity 838 Advanced Sample Processor
English
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- 8.838.60118.838.6011Brochure: 838 Advanced VA Sample Processor
The 838 Advanced VA Sample Processor allows the fully automatic and extremely flexible processing of large sample series in the routine monitoring of electroplating baths.
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- 8.840.09038.840.0903Declaration of conformity PC Control 4.0, english
English
- 8.840.09238.840.0923Declaration of conformity PC Control 4.1, english
English
- 8.840.09338.840.0933Declaration of conformity Touch Control Software, english; program versions 5.808.0141 / 5.809.0141 / 5.840.0131
English
- 8.840.11318.840.1131Installation Instructions for Titrando, german
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- 8.840.11328.840.1132Installation Instructions for Titrando, french
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- 8.840.11358.840.1135Installation Instructions for Titrando, spanish
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- 8.840.14118.840.1411Tutorial for 840 Touch Control, German
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- 8.840.14128.840.1412Tutorial for 840 Touch Control, French
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- 8.840.14138.840.1413Tutorial for 840 Touch Control, English
English
- 8.840.14158.840.1415Tutorial for 840 Touch Control, Spanish
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- 8.840.15118.840.1511Tutorial for PC Control 2.0/3.0/4.0/4.1/5.0/6.0, German
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- 8.840.15128.840.1512Tutorial for PC Control 2.0/3.0/4.0/4.1/5.0/6.0, French
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- 8.840.15138.840.1513Tutorial for PC Control 2.0/3.0/4.0/4.1/5.0/6.0, English
English
- 8.840.15158.840.1515Tutorial for PC Control 2.0/3.0/4.0/4.1/5.0/6.0, Spanish
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- 8.840.30018.840.3001Declaration of conformity 840 Touch Control, English
English
- 8.840.30028.840.3002Declaration of conformity: Touch Control software 5.840.0140, English
English
- 8.840.30058.840.3005Declaration of conformity PC Control 5.0, English
English
- 8.840.30088.840.3008Certificate: FDA 21 CFR Part 11 Compliance for 840 Touch Control software 5.840.0150
English
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- 8.840.30098.840.3009Certificate: FDA 21 CFR Part 11 Compliance for PC Control 6.0
English
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- 8.840.30108.840.3010Declaration of conformity Touch Control software 5.840.0150, English
English
- 8.840.30118.840.3011Declaration of conformity PC Control 6.0, English
English
- 8.840.40038.840.4003System Assessment Report for 840 Touch Control software 5.840.0150
English
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- 8.840.40048.840.4004System Assessment Report for PC Control 6.0
English
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- 8.840.80018.840.8001Release Notes PC Control 5.0 / Touch Control 5.840.0140, English
English
- 8.840.80098.840.8009Release Notes PC Control 6.0 / Touch Control 5.840.0150, English
English
- 8.841.30138.841.3013Declaration of conformity 841 Titrando, english
English
- 8.842.30038.842.3003Declaration of conformity 842 Titrando, english
English
- 8.843.30018.843.3001EU declaration of conformity for 843 Pump Station
English
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- 8.844.10518.844.1051Instructions for Use 844 UV/VIS Compact IC, german
4.version
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- 8.844.30018.844.3001Declaration of conformity 844 UV/VIS Compact IC
English
- 8.845.09038.845.0903Declaration of conformity 845 Mix Control Software, english
English
- 8.845.30018.845.3001Declaration of conformity 845 Eluent Synthesizer
English
- 8.846.30018.846.3001Declaration of conformity 846 Dosing Interface
English
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- 8.846.60018.846.6001Brochure: 846 Dosing Interface
The 846 Dosing Interface and the 800 Dosino turn the basic liquid handling operations into child's play. The 846 Dosing Interface is a control unit for up to four dosing elements. It can be used to expand existing Metrohm systems but also deals, as an independent system, with any liquid handling task occurring in the laboratory.
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- 8.847.10018.847.1001Instructions for Use 847 USB Lab Link, german
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- 8.847.30038.847.3003Declaration of conformity 847 USB Lab Link, english
English
- 8.848.30068.848.3006Declaration of conformity: 848 Titrino plus
English
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- 8.848.80048.848.8004Tutorial 848/877 Titrino plus
English
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- 8.848.80058.848.8005Release Notes Titrino plus, prog. 0022
English
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- 8.848.80068.848.8006Release Notes Titrino plus, prog. 0023
English
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- 8.848.80098.848.8009Release Notes 848, 870, 877, 865, 876, 862, 885, 899
English
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- 8.848.80108.848.8010Release Notes 5.848.025, 5.870.025, 5.877.025, 5.865.026, 5.876.026, 5.885.0012
English
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- 8.849.30028.849.3002Declaration of conformity 849 Level Control
English
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- 8.850.30348.850.3034Declaration of conformity for IC Conductivity Detector
English
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- 8.850.30358.850.3035Declaration of conformity for IC Amperometric Detector
English
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- 8.850.80048.850.8004Manual for 850 Professional IC, 2.850.2010 - Anion
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- 8.850.80058.850.8005Manual for 850 Professional IC, 2.850.2030 - Anion MCS
- 8.850.80078.850.8007Manual for 850 Professional IC, 2.850.2110 - Anion MCS Prep 1
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- 8.850.80088.850.8008Manual for 850 Professional IC, 2.850.2150 - Anion MCS Prep 2
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- 8.850.80098.850.8009Manual for 850 Professional IC, 2.850.2190 - Anion MCS Prep 3
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- 8.850.80108.850.8010Manual for 850 Professional IC, 2.850.2220 - Anion MCS Gradient
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- 8.850.80308.850.8030Manual for 850 Professional IC, 2.850.1030 - Cation Prep 1
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- 8.850.80318.850.8031Manual for 850 Professional IC, 2.850.1050 - Cation Prep 2
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- 8.850.80328.850.8032Manual for 850 Professional IC, 2.850.2010 - Anion
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- 8.850.80348.850.8034Manual for 850 Professional IC, 2.850.2110 - Anion MCS Prep 1
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- 8.850.80358.850.8035Manual for 850 Professional IC, 2.850.2150 - Anion MCS Prep 2
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- 8.850.80368.850.8036Manual for 850 Professional IC, 2.850.2190 - Anion MCS Prep 3
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- 8.850.80378.850.8037Manual for 850 Professional IC, 2.850.2220 - Anion MCS Gradient
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- 8.850.80388.850.8038Manual for 850 Professional IC, 2.850.3010 - AnCat
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- 8.850.80408.850.8040Manual for 850 Professional IC, 2.850.2210 - Anion - MCS - LP Gradient
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- 8.850.80418.850.8041Manual for 850 Professional IC, 2.850.3000 - AnCat - non-suppressed
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- 8.850.80558.850.8055Supplement to 850, 881, 882, 883 anion manuals
Label of the suppressor capillaries changed
English
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- 8.850.80638.850.8063Supplement to 850, 881, 882, 883 Manuals
Correct installation of aspiration filter (6.2821.090)
English
- 8.850.80648.850.8064Release Notes 850 Devices 5.850.0113
English
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- 8.850.80668.850.8066Release Notes firmware version 5.850.0114
English
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- 8.851.30018.851.3001Declaration of conformity 851 Titrando
EU declaration of conformity / UK declaration of conformity 851 Titrando
English
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- 8.851.80058.851.8005Release Notes for 5.851.0012 - 5.852.0012 Titrando
English
- 8.852.30018.852.3001Declaration of conformity 852 Titrando
EU declaration of conformity / UK declaration of conformity 852 Titrando
English
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- 8.853.30018.853.3001Declaration of conformity 853 CO2 Suppressor
English
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- 8.854.30028.854.3002Declaration of conformity 854 iConnect
English
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- 8.855.30038.855.3003Declaration of conformity 855 Robotic Titrosampler
English
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- 8.856.30018.856.3001EU declaration of conformity 856 Conductivity Module
English
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- 8.856.80038.856.8003Release Notes for 5.856.0020 856 Conductivity Module
English
- 8.856.80068.856.8006Release Notes for various instruments, USB 3.0 compatibility
English
- 8.857.30038.857.3003Declaration of conformity 857 Titrando, english
English
- 8.858.30018.858.3001Declaration of conformity: 858 Professional Sample Processor
English
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- 8.859.80028.859.8002Release Notes 859 Titrotherm FW V6
English
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