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Article

Formation and Electrochemical Evaluation of Polyaniline and Polypyrrole Nanocomposites Based on Glucose Oxidase and Gold Nanostructures

by
Natalija German
1,2,
Almira Ramanaviciene
1,2 and
Arunas Ramanavicius
3,4,*
1
Department of Immunology, State Research Institute Centre for Innovative Medicine, Santariskiu 5, LT-08406 Vilnius, Lithuania
2
NanoTechnas—Center of Nanotechnology and Materials Science, Faculty of Chemistry and Geosciences, Vilnius University, LT-03225 Vilnius, Lithuania
3
Department of Physical Chemistry, Faculty of Chemistry and Geosciences, Vilnius University, Naugarduko 24, LT-03225 Vilnius, Lithuania
4
Division of Materials Science and Electronics, State Scientific Research Institute Center for Physical Sciences and Technology, Savanorių Ave. 231, LT-02300 Vilnius, Lithuania
*
Author to whom correspondence should be addressed.
Polymers 2020, 12(12), 3026; https://doi.org/10.3390/polym12123026
Submission received: 1 November 2020 / Revised: 11 December 2020 / Accepted: 13 December 2020 / Published: 17 December 2020
(This article belongs to the Special Issue High-Performance Polymeric Sensors )

Abstract

Nanocomposites based on two conducting polymers, polyaniline (PANI) and polypyrrole (Ppy), with embedded glucose oxidase (GOx) and 6 nm size gold nanoparticles (AuNPs(6nm)) or gold-nanoclusters formed from chloroaurate ions (AuCl4), were synthesized by enzyme-assisted polymerization. Charge (electron) transfer in systems based on PANI/AuNPs(6nm)-GOx, PANI/AuNPs(AuCl4)-GOx, Ppy/AuNPs(6nm)-GOx and Ppy/AuNPs(AuCl4)-GOx nanocomposites was investigated. Cyclic voltammetry (CV)-based investigations showed that the reported polymer nanocomposites are able to facilitate electron transfer from enzyme to the graphite rod (GR) electrode. Significantly higher anodic current and well-defined red-ox peaks were observed at a scan rate of 0.10 V s−1. Logarithmic function of anodic current (log Ipa), which was determined by CV-based experiments performed with glucose, was proportional to the logarithmic function of a scan rate (log v) in the range of 0.699–2.48 mV s−1, and it indicates that diffusion-controlled electrochemical processes were limiting the kinetics of the analytical signal. The most efficient nanocomposite structure for the design of the reported glucose biosensor was based on two-day formed Ppy/AuNPs(AuCl4)-GOx nanocomposites. GR/Ppy/AuNPs(AuCl4)-GOx was characterized by the linear dependence of the analytical signal on glucose concentration in the range from 0.1 to 0.70 mmol L−1, the sensitivity of 4.31 mA mM cm−2, the limit of detection of 0.10 mmol L−1 and the half-life period of 19 days.
Keywords: biofuel cell; cyclic voltammetry; glucose biosensor; glucose oxidase; gold nanoparticles; conducting polymers; polyaniline; polymer nanocomposite; polypyrrole biofuel cell; cyclic voltammetry; glucose biosensor; glucose oxidase; gold nanoparticles; conducting polymers; polyaniline; polymer nanocomposite; polypyrrole
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MDPI and ACS Style

German, N.; Ramanaviciene, A.; Ramanavicius, A. Formation and Electrochemical Evaluation of Polyaniline and Polypyrrole Nanocomposites Based on Glucose Oxidase and Gold Nanostructures. Polymers 2020, 12, 3026. https://doi.org/10.3390/polym12123026

AMA Style

German N, Ramanaviciene A, Ramanavicius A. Formation and Electrochemical Evaluation of Polyaniline and Polypyrrole Nanocomposites Based on Glucose Oxidase and Gold Nanostructures. Polymers. 2020; 12(12):3026. https://doi.org/10.3390/polym12123026

Chicago/Turabian Style

German, Natalija, Almira Ramanaviciene, and Arunas Ramanavicius. 2020. "Formation and Electrochemical Evaluation of Polyaniline and Polypyrrole Nanocomposites Based on Glucose Oxidase and Gold Nanostructures" Polymers 12, no. 12: 3026. https://doi.org/10.3390/polym12123026

APA Style

German, N., Ramanaviciene, A., & Ramanavicius, A. (2020). Formation and Electrochemical Evaluation of Polyaniline and Polypyrrole Nanocomposites Based on Glucose Oxidase and Gold Nanostructures. Polymers, 12(12), 3026. https://doi.org/10.3390/polym12123026

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