Petersson, 1986 - Google Patents
Electrocatalytic oxidation of ascorbic acid and voltammetric determination with a ferrocene-modified platinum electrodePetersson, 1986
- Document ID
- 16733798145451181811
- Author
- Petersson M
- Publication year
- Publication venue
- Analytica chimica acta
External Links
Snippet
Ferrocene attached to the surface of a platinum electrode catalyses the electrochemical oxidation of ascorbic acid in acidic buffer solutions. The overpotential for ascorbic acid oxidation is decreased by 150 mV at pH 2.2 compared with reaction at bare platinum; and …
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 OC[C@H](O)[C@H]1OC(=O)C(O)=C1O 0 title abstract description 36
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- G01N27/403—Cells and electrode assemblies
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Petersson | Electrocatalytic oxidation of ascorbic acid and voltammetric determination with a ferrocene-modified platinum electrode | |
Raoof et al. | Carbon paste electrode spiked with ferrocene carboxylic acid and its application to the electrocatalytic determination of ascorbic acid | |
Zen et al. | Electrocatalytic oxidation and trace detection of amitrole using a Nafion/lead–ruthenium oxide pyrochlore chemically modified electrode | |
Taleat et al. | Electrochemical behavior of ascorbic acid at a 2, 2'-[3, 6-dioxa-1, 8-octanediylbis (nitriloethylidyne)]-bis-hydroquinone carbon paste electrode | |
Schachl et al. | Amperometric Determination of Hydrogen Peroxide With a ManganeseDioxide-modified Carbon Paste Electrode Using Flow InjectionAnalysis | |
Atta et al. | Electrochemistry and detection of some organic and biological molecules at conducting poly (3-methylthiophene) electrodes | |
Gao et al. | Determination of ascorbic acid in a mixture of ascorbic acid and uric acid at a chemically modified electrode | |
Erdoğdu et al. | Investigation and comparison of the electrochemical behavior of some organic and biological molecules at various conducting polymer electrodes | |
Nalini et al. | Electrocatalytic oxidation of sulfhydryl compounds at ruthenium (III) diphenyldithiocarbamate modified carbon paste electrode | |
Cox et al. | Voltammetric reduction and determination of hydrogen peroxide at an electrode modified with a film containing palladium and iridium | |
Ensafi et al. | Carbon paste electrode prepared from chemically modified multiwall carbon nanotubes for the voltammetric determination of isoprenaline in pharmaceutical and urine samples | |
Wring et al. | Voltammetric behaviour of screen-printed carbon electrodes, chemically modified with selected mediators, and their application as sensors for the determination of reduced glutathione | |
Ensafi et al. | New modified-multiwall carbon nanotubes paste electrode for electrocatalytic oxidation and determination of hydrazine using square wave voltammetry | |
Ravichandran et al. | Phenylenediamine-containing chemically modified carbon paste electrodes as catalytic voltammetric sensors | |
Taha et al. | Electrocatalysis and flow detection at a glassy carbon electrode modified with a thin film of oxymanganese species | |
Lupu et al. | Polythiophene derivative conducting polymer modified electrodes and microelectrodes for determination of ascorbic acid. Effect of possible interferents | |
Doherty et al. | Oxidative detection of nitrite at an electrocatalytic [Ru (bipy) 2poly-(4-vinylpyridine) 10Cl] Cl electrochemical sensor applied for the flow injection determination of nitrate using a Cu/Cd reductor column | |
Pessôa et al. | Electrochemical study of methylene blue immobilized in zirconium phosphate | |
Zen et al. | Flow injection amperometric detection of hydrazine by electrocatalytic oxidation at a perfluorosulfonated ionomer/ruthenium oxide pyrochlore chemically modified electrode | |
Ugo et al. | Ion‐exchange voltammetry of trace mercury (ii) at glassy carbon electrodes coated with a cationic polypyrrole derivative. Application to pore‐waters analysis | |
Ojani et al. | Electrochemical behavior of chloranil chemically modified carbon paste electrode. Application to the electrocatalytic determination of ascorbic acid | |
Schachl et al. | Flow injection determination of hydrogen peroxide using a carbon paste electrode modified with a manganese dioxide film | |
Naik et al. | Surfactant induced iron (II) phthalocyanine modified carbon paste electrode for simultaneous detection of ascorbic acid, dopamine and uric acid | |
Hu et al. | Enhanced reduction and determination of trace thyroxine at carbon paste electrode in the presence of trace cetyltrimethylammonium bromide | |
Chen et al. | The electropolymerization and electrocatalytic properties of polymerized MnTAPP film modified electrodes in aqueous solutions |