Analyte quantification in first generation electrochemical biosensors is threatened by electro-active molecules, such as ascorbic acid (AA). Electrochemical deposition of ortho-phenylendiamine (oPD) on transducer considerably reduces AA interfering. These properties of poly-oPD (PPD) are influenced by electro-polymerization conditions. Chronoamperometry (CA) is proposed as an alternative technique for oPD electro-deposition over Pt. Pt/PPD sensors are evaluated through functional parameters related to AA rejection and analytical performances. N, O, and air bubbled supporting electrolyte and several step duration times are used. Best performing CA-PPD sensor is obtained in N-purged phosphate solution containing 300 mM oPD by means of a 1 s step duration/120 steps CA. High performing PPD is achieved in shorter time compared to commonly used constant potential amperometry. Aging of polymeric features and scanning electron microscopy investigations are performed and optimized CA electro-polymerization conditions are used to build up an efficient interference blocking layer in a glucose oxidase biosensor.

Chronoamperometry as effective alternative technique for electro-synthesis of ortho-phenylendiamine permselective films for biosensor applications

Marceddu S;
2020

Abstract

Analyte quantification in first generation electrochemical biosensors is threatened by electro-active molecules, such as ascorbic acid (AA). Electrochemical deposition of ortho-phenylendiamine (oPD) on transducer considerably reduces AA interfering. These properties of poly-oPD (PPD) are influenced by electro-polymerization conditions. Chronoamperometry (CA) is proposed as an alternative technique for oPD electro-deposition over Pt. Pt/PPD sensors are evaluated through functional parameters related to AA rejection and analytical performances. N, O, and air bubbled supporting electrolyte and several step duration times are used. Best performing CA-PPD sensor is obtained in N-purged phosphate solution containing 300 mM oPD by means of a 1 s step duration/120 steps CA. High performing PPD is achieved in shorter time compared to commonly used constant potential amperometry. Aging of polymeric features and scanning electron microscopy investigations are performed and optimized CA electro-polymerization conditions are used to build up an efficient interference blocking layer in a glucose oxidase biosensor.
2020
Istituto di Scienze delle Produzioni Alimentari - ISPA
ChronoamperometryElectrochemical depositionElectrolytesGlucose oxidaseGlucose sensorsPolymerizationReductionScanning electron microscopy
Analytical performanceBiosensor applicationsElectrochemical biosensorFunctional parametersPermselective filmspolyphenylendiaminePt modificationSupporting electrolyte
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/367114
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