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Electrodeposition–Assisted Assembled Multilayer Films of Gold Nanoparticles and Glucose Oxidase onto Polypyrrole-Reduced Graphene Oxide Matrix and Their Electrocatalytic Activity toward Glucose

机译:聚吡咯还原石墨烯氧化物上金纳米粒子和葡萄糖氧化酶的电沉积辅助多层膜及其对葡萄糖的电催化活性

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摘要

The study reports a facile and eco-friendly approach for nanomaterial synthesis and enzyme immobilization. A corresponding glucose biosensor was fabricated by immobilizing the gold nanoparticles (AuNPs) and glucose oxidase (GOD) multilayer films onto the polypyrrole (PPy)/reduced graphene oxide (RGO) modified glassy carbon electrode (GCE) via the electrodeposition and self-assembly. PPy and graphene oxide were first coated on the surface of a bare GCE by the electrodeposition. Then, AuNPs and GOD were alternately immobilized onto PPy-RGO/GCE electrode using the electrodeposition of AuNPs and self-assembly of GOD to obtain AuNPs-GOD multilayer films. The resulting PPy-RGO-(AuNPs-GOD)n/GCE biosensors were used to characterize and assess their electrocatalytic activity toward glucose using cyclic voltammetry and amperometry. The response current increased with the increased number of AuNPs-GOD layers, and the biosensor based on four layers of AuNPs-GOD showed the best performance. The PPy-RGO-(AuNPs-GOD)4/GCE electrode can detect glucose in a linear range from 0.2 mM to 8 mM with a good sensitivity of 0.89 μA/mM, and a detection limit of 5.6 μM (S/N = 3). This study presents a promising eco-friendly biosensor platform with advantages of electrodeposition and self-assembly, and would be helpful for the future design of more complex electrochemical detection systems.
机译:该研究报告了一种用于纳米材料合成和酶固定的简便且环保的方法。通过电沉积和自组装将金纳米颗粒(AuNPs)和葡萄糖氧化酶(GOD)多层膜固定到聚吡咯(PPy)/还原氧化石墨烯(RGO)修饰的玻碳电极(GCE)上,制造了相应的葡萄糖生物传感器。首先通过电沉积将PPy和氧化石墨烯涂覆在裸露的GCE的表面上。然后,通过AuNPs的电沉积和GOD的自组装将AuNPs和GOD交替固定在PPy-RGO / GCE电极上,得到AuNPs-GOD多层膜。使用循环伏安法和安培法,将所得的PPy-RGO-(AuNPs-GOD)n / GCE生物传感器用于表征和评估其对葡萄糖的电催化活性。响应电流随着AuNPs-GOD层数的增加而增加,基于四层AuNPs-GOD的生物传感器表现出最好的性能。 PPy-RGO-(AuNPs-GOD)4 / GCE电极可在0.2 mM至8 mM的线性范围内检测葡萄糖,灵敏度为0.89μA/ mM,检测极限为5.6μM(S / N = 3 )。这项研究提出了一个有希望的具有电沉积和自组装优势的生态友好型生物传感器平台,将有助于将来设计更复杂的电化学检测系统。

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