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Electrochemical Synthesis of Polypyrrole Reduced Graphene Oxide and Gold Nanoparticles Composite and Its Application to Hydrogen Peroxide Biosensor

机译:聚吡咯还原石墨烯和金纳米粒子的电化学合成及其在过氧化氢生物传感器中的应用

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摘要

Here we report a facile eco-friendly one-step electrochemical approach for the fabrication of a polypyrrole (PPy), reduced graphene oxide (RGO), and gold nanoparticles (nanoAu) biocomposite on a glassy carbon electrode (GCE). The electrochemical behaviors of PPy–RGO–nanoAu and its application to electrochemical detection of hydrogen peroxide were investigated by cyclic voltammetry. Graphene oxide and pyrrole monomer were first mixed and casted on the surface of a cleaned GCE. After an electrochemical processing consisting of the electrooxidation of pyrrole monomer and simultaneous electroreduction of graphene oxide and auric ions (Au3+) in aqueous solution, a PPy–RGO–nanoAu biocomposite was synthesized on GCE. Each component of PPy–RGO–nanoAu is electroactive without non-electroactive substance. The obtained PPy–RGO–nanoAu/GCE exhibited high electrocatalytic activity toward hydrogen peroxide, which allows the detection of hydrogen peroxide at a negative potential of about −0.62 V vs. SCE. The amperometric responses of the biosensor displayed a sensitivity of 40 µA/mM, a linear range of 32 µM–2 mM, and a detection limit of 2.7 µM (signal-to-noise ratio = 3) with good stability and acceptable reproducibility and selectivity. The results clearly demonstrate the potential of the as-prepared PPy–RGO–nanoAu biocomposite for use as a highly electroactive matrix for an amperometric biosensor.
机译:在这里,我们报告了一种在玻璃碳电极(GCE)上生物合成聚吡咯(PPy),还原型氧化石墨烯(RGO)和金纳米颗粒(nanoAu)的简便的环保一步电化学方法。通过循环伏安法研究了PPy–RGO–nanoAu的电化学行为及其在过氧化氢电化学检测中的应用。首先将氧化石墨烯和吡咯单体混合并浇铸在清洁的GCE的表面上。经过吡咯单体的电氧化,水溶液中氧化石墨烯和金离子(Au 3 + )同时电还原的电化学处理,在GCE上合成了PPy–RGO–nanoAu生物复合材料。 PPy–RGO–nanoAu的每个成分均具有电活性,而不含非电活性物质。所获得的PPy–RGO–nanoAu / GCE对过氧化氢表现出高电催化活性,从而可以检测到相对于SCE负电位约为-0.62 V的过氧化氢。生物传感器的安培响应显示出40 µA / mM的灵敏度,32 µM–2 mM的线性范围和2.7 µM的检测限(信噪比= 3),具有良好的稳定性以及可接受的重现性和选择性。 。结果清楚地证明了所制备的PPy–RGO–nanoAu生物复合材料可用作安培生物传感器的高电活性基质的潜力。

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