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

机译:基于葡萄糖氧化酶和金纳米结构的聚苯胺和聚吡咯纳米复合材料的形成与电化学评价

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摘要

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.
机译:基于两种导电聚合物,聚苯胺(PANI)和聚吡咯(PPY),具有嵌入葡萄糖氧化酶(GOX)和6nm尺寸的金纳米颗粒(AUNPS(6nm))或由氯生物酸盐离子(AuCl4-)形成的镀金纳米蛋白(AUNPS(6nm))或金纳米共和剂的纳米复合材料通过酶辅助聚合合成。研究了基于PANI / AUNPS(6nm)-Gox,PANI / AUNPS(AUCL4 - ) - GOX,PPY / AUNPS(6nM)-GOX和PPY / AUNPS(AUCL4 - ) - GOX纳米复合材料的系统中的电荷(电子)转移。基于循环伏安法(CV)的研究表明,报道的聚合物纳米复合材料能够促进从酶转移到石墨棒(GR)电极的电子转移。以0.10V S-1的扫描速率观察到显着更高的阳极电流和明确定义的红氧峰。由葡萄糖进行的基于CV的基于CV的实验确定的阳极电流(Log IPA)的对数函数与扫描速率(log v)的对数函数成比例,范围为0.699-2.48 mV S-1,以及它表示扩散控制的电化学过程限制了分析信号的动力学。对于报告的葡萄糖生物传感器的设计最有效的纳米复合结构基于两天形成的PPY / AUNPS(AUCL4 - ) - GOX纳米复合材料。 GR / PPY / AUNPS(AUCL4 - ) - GOX的特征在于分析信号对葡萄糖浓度的线性依赖性在0.1至0.70mmol L-1的范围内,灵敏度为4.31 mm mm-2,检测极限0.10 mmol l-1和半衰期为19天。

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