Chemically modified, carbon-based electrodes and their application as electrochemical sensors for the analysis of biologically important compounds. A review
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[1] Brian J. Birch,et al. Development of screen-printed carbon electrodes, chemically modified with cobalt phthalocyanine, for electrochemical sensor applications , 1990 .
[2] J. Wang,et al. Polishable and robust biological electrode surfaces. , 1990, Analytical chemistry.
[3] Roberto Rozas,et al. Electrocatalytic effects of adsorbed cobalt phthalocyanine tetrasulfonate in the anodic oxidation of cysteine , 1981 .
[4] Lo Gorton,et al. Chemically modified electrodes for the electrocatalytic oxidation of nicotinamide coenzymes , 1986 .
[5] Rolf D. Schmid,et al. A sensitive enzyme electrode for phenol monitoring , 1990 .
[6] A P Turner,et al. Rapid determination of the glucose content of molasses using a biosensor. , 1989, The Analyst.
[7] A. Turner,et al. Amperometric tetrathiafulvalene-mediated lactate electrode using lactate oxidase absorbed on carbon foil , 1990 .
[8] J. Kulys,et al. Bioelectrocatalytic conversion of substances on polymer-modified electrodes , 1984 .
[9] D. Siemer. Consequences of light beam misalignment in background corrected atomic absorption spectrometers , 1984 .
[10] A. Turner,et al. MEDIATED AMPEROMETRIC ENZYME ELECTRODE INCORPORATING PEROXIDASE FOR THE DETERMINATION OF HYDROGEN PEROXIDE IN ORGANIC SOLVENTS , 1991 .
[11] J. Kulys,et al. Reagentless Biosensors for Substrates of Dehydrogenases , 1991 .
[12] R. Baldwin,et al. Phenylenediamine-containing chemically modified carbon paste electrodes as catalytic voltammetric sensors , 1983 .
[13] J. Kulys,et al. Biocatalytic oxidation of glucose on the conductive charge transfer complexes , 1981 .
[14] W. Blaedel,et al. Study of the electrochemical oxidation of reduced nicotinamide adenine dinucleotide. , 1975, Analytical chemistry.
[15] M. Smyth,et al. Amperometric enzyme electrode for theophylline. , 1991, The Analyst.
[16] L. Gorton,et al. Enzymatic determination of glucose in a flow system by catalytic oxidation of the nicotinamide coenzyme at a modified electrode , 1985 .
[17] J. Wang,et al. Multifunctional chemically modified electrodes with mixed cobalt phthalocyanine/nafion coatings. , 1989, Talanta.
[18] T. Yao,et al. Specific detection of nicotinamide coenzymes by liquid chromatography and amperometric detection with immobilized glucose-6-phosphate dehydrogenase , 1989 .
[19] M. Senda,et al. Amperometric enzyme electrode for maltose based on an oligosaccharide dehydrogenase-modified carbon paste electrode containing p-benzoquinone , 1989 .
[20] Anthony Turner,et al. Development of an electrochemical method for the rapid determination of microbial concentration and evidence for the reaction mechanism , 1988 .
[21] H. Schmidt,et al. Determination of the substrates of dehydrogenases in biological material in flow-injection systems with electrocatalytic NADH oxidation , 1984 .
[22] T. Golden,et al. Polishable and robust modified graphite epoxy electrodes. , 1989, Analytical chemistry.
[23] R. Baldwin,et al. Amperometric detection of thiopurines in blood plasma with a cobalt-phthalocyanine chemically modified electrode after liquid chromatography , 1986 .
[24] M. J. Green,et al. Disposable electrochemical biosensors. , 1991, In Analysis.
[25] T. Yao,et al. Flow-injection analysis for l-glutamate using immobilized l-glutamate oxidase: comparison of an enzyme reactor and enzyme electrode , 1990 .
[26] A. Kaifer,et al. Long-Term Operational Stability of a Mixed Glucose Oxidase-Redox Mediator-Carbon Paste Electrode , 1991 .
[27] K. Ravichandran,et al. Chemically modified carbon paste electrodes , 1981 .
[28] A. Turner,et al. Ferrocene-mediated enzyme electrode for amperometric determination of glucose. , 1984, Analytical chemistry.
[29] J. Hart,et al. Voltammetric behaviour of ascorbic acid at a graphite-epoxy composite electrode chemically modified with cobalt phthalocyanine and its amperometric determination in multivitamin preparations , 1990 .
[30] R. Baldwin,et al. Electrochemical Detection of Ribonucleotides At A Carbon Paste Electrode Containing Cobalt Phthalocyanine , 1989 .
[31] L. Gorton,et al. Amperometric glucose sensor based on glucose dehydrogenase immobilized on a graphite electrode modified with an N,N′-bis(benzophenoxazinyl) derivative, of benzene-1,4-dicarboxamide , 1991 .
[32] H. Schmidt,et al. Bioelectrochemical detection systems for substrates of dehydrogenases , 1984 .
[33] P. Hale,et al. Amperometric glucose sensors based on ferrocene-modified poly(ethylene oxide) and glucose oxidase , 1991 .
[34] Brian J. Birch,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 , 1991 .
[35] P. Elving,et al. Anodic oxidation of dihydronicotinamide adenine dinucleotide at solid electrodes; mediation by surface species , 1983 .
[36] I. Karube,et al. Alcohol sensor based on membrane-bound alcohol dehydrogenase , 1989 .
[37] R. Baldwin,et al. Catalytic reduction of myoglobin and hemoglobin at chemically modified electrodes containing methylene blue. , 1988, Analytical chemistry.
[38] J A Cox,et al. Flow injection amperometric determination of insulin based upon its oxidation at a modified electrode. , 1989, Analytical chemistry.
[39] Chemical purity and the electrical conductivity of tetrathiafulvalinium tetracyanoquinodimethanide , 1975 .
[40] K. Nagai,et al. Electrical stimulation of the suprachiasmatic nucleus of the hypothalamus causes hyperglycemia. , 1988, Hormone and metabolic research = Hormon- und Stoffwechselforschung = Hormones et metabolisme.
[41] M. Comtat,et al. Bienzyme amperometric lactate-specific electrode , 1990 .
[42] B. Eggins,et al. The cyclic voltammetry of some sulphonated transition metal phthalocyanines in dimethylsulphoxide and in water , 1989 .
[43] G. Marko‐Varga. High-performance liquid chromatographic separation of some mono- and disaccharides with detection by a post-column enzyme reactor and a chemically modified electrode. , 1987, Journal of chromatography.
[44] M. Senda,et al. Amperometric response to reducing carbohydrates of an enzyme electrode based on oligosaccharide dehydrogenase. Detection of lactose and α-amylase , 1990 .
[45] J. Hart,et al. Determination of reduced glutathione in human whole blood by high-performance liquid chromatography with electrochemical detection by a graphite-epoxy resin electrode chemically modified with cobalt phthalocyanine. , 1991, Talanta.
[46] T. Golden,et al. Cobalt phthalocyanine/cellulose acetate chemically modified electrodes for electrochemical detection in flowing streams. Multifunctional operation based upon the coupling of electrocatalysis and permselectivity. , 1988, Analytical chemistry.
[47] R. Baldwin,et al. Electrochemistry and chromatographic detection of monosaccharides, disaccharides, and related compounds at an electrocatalytic chemically modified electrode , 1988 .
[48] Joseph Wang. Modified electrodes for electrochemical detection in flowing streams , 1990 .
[49] M. Mascini,et al. Amperometric probe for 3-hydroxybutyrate with immobilized 3-hydroxybutyrate dehydrogenase , 1988 .
[50] H. Gunasingham,et al. Carbon paste-tetrathiafulvalene amperometric enzyme electrode forthe determination of glucose in flowing systems. , 1990, The Analyst.
[51] Arne Torstensson,et al. Electrocatalytic oxidation of reduced nicotinamide coenzymes by graphite electrodes modified with an adsorbed phenoxazinium salt, meldola blue , 1984 .
[52] Soichi Yabuki,et al. Electrical activity controlling system for a mediator-coexisting alcohol dehydrogenase-NAD conductive membrane , 1990 .
[53] L. Gorton,et al. A comparative study of some 3,7-diaminophenoxazine derivatives and related compounds for electrocatalytic oxidation of NADH , 1990 .
[54] A. Turner,et al. An Enzyme Electrode for Glucose Consisting of Glucose Oxidase Immobilised at a Benzoquinone-Modified Carbon Electrode , 1991 .
[55] Joseph Wang,et al. Mixed ferrocene-glucose oxidase--carbon-paste electrode for amperometric determination of glucose. , 1990 .
[56] J. Vílchez,et al. Bioamperometric sensors for phenol based on carbon paste electrodes , 1989 .
[57] A. Brajter-toth,et al. Tetrathiafulvalene tetracyanoquinodimethane xanthine oxidase amperometric electrode for the determination of biological purines. , 1987, Analytical chemistry.
[58] J. Hart,et al. Determination of glutathione in human plasma using high-performance liquid chromatography with electrochemical detection with a carbon-epoxy resin composite electrode chemically modified with cobalt phthalocyanine. , 1989, The Analyst.
[59] Petr Skládal,et al. Determination of organophosphate and carbamate pesticides using a cobalt phthalocyanine-modified carbon paste electrode and a cholinesterase enzyme membrane , 1991 .
[60] L. Gorton,et al. A glucose electrode based on carbon paste chemically modified with a ferrocene-containing siloxane polymer and glucose oxidase, coated with a poly(ester-sulfonic acid) cation-exchanger , 1990 .
[61] A. Turner,et al. MEDIATED AMPEROMETRIC BIOSENSORS FOR D-GALACTOSE, GLYCOLATE AND L-AMINO-ACIDS BASED ON A FERROCENE-MODIFIED CARBON PASTE ELECTRODE , 1986 .
[62] R. Baldwin,et al. Electrocatalytic and analytical response of cobalt phthalocyanine containing carbon paste electrodes toward sulfhydryl compounds , 1985 .
[63] M. Batchelor,et al. Amperometric assay for the ketone body 3-hydroxybutyrate , 1989 .
[64] T. Buch-Rasmussen. Flow system for direct determination of enzyme substrate in undiluted whole blood. , 1990, Analytical chemistry.
[65] Björn Persson,et al. A chemically modified graphite electrode for electrocatalytic oxidation of reduced nicotinamide adenine dinucleotide based on a phenothiazine derivative, 3-β-naphthoyl-toluidine blue O , 1990 .
[66] Arne Torstensson,et al. Catalytic oxidation of reduced nicotinamide adenine dinucleotide by graphite electrodes modified with adsorbed aromatics containing catechol functionalities , 1981 .
[67] M. Smyth,et al. Electrocatalytic detection of streptomycin and related antibiotics at ruthenium dioxide modified graphite--epoxy composite electrodes. , 1990, In Analysis.
[68] T. Golden,et al. Metalloporphyrin chemically modified glassy carbon electrodes as catalytic voltammetric sensors , 1989 .
[69] L. Gorton,et al. Catalytic oxidation of NADH by surface-modified graphite electrodes , 1981 .
[70] Joseph Wang,et al. Yeast-based carbon paste bioelectrode for ethanol , 1989 .
[71] P. Hale,et al. Amperometric glycolate sensors based on glycolate oxidase and polymeric electron transfer mediators , 1990 .
[72] P. Geno,et al. Chemically modified carbon paste electrodes: Part IV. Electrostatic binding and electrocatalysis at poly(4-vinylpyridine)-containing electrodes , 1985 .
[73] J. Hart,et al. Development of an improved carbon electrode chemically modified with cobalt phthalocyanine as a re-usable sensor for glutathione , 1989 .
[74] I. Karube,et al. Kinetics of an amperometric glucose sensor with a soluble mediator , 1989 .
[75] L. Faulkner,et al. Reversible oxidation and rereduction of entire thin films of transition-metal phthalocyanines , 1983 .
[76] P. Hale,et al. Amperometric glucose biosensors based on redox polymer-mediated electron transfer , 1991 .