首页> 外文期刊>Talanta: The International Journal of Pure and Applied Analytical Chemistry >Novel electrochemical synthesis of cellulose microfiber entrapped reduced graphene oxide: A sensitive electrochemical assay for detection of fenitrothion organophosphorus pesticide
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Novel electrochemical synthesis of cellulose microfiber entrapped reduced graphene oxide: A sensitive electrochemical assay for detection of fenitrothion organophosphorus pesticide

机译:纤维素微纤维的新型电化学合成诱捕的石墨烯氧化物:一种敏感的电化学测定检测Fenitroothion有机磷农药

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摘要

Over the past decades, the synthesis of carbohydrate polymers incorporated graphene or reduced graphene oxide has received greater attention in different disciplines owing to their unique physicochemical properties. In this context, we report a facile electrochemical synthesis of cellulose microfibers supported reduced graphene oxide and its application towards enhanced and lower potential electrochemical detection of fenitrothion. The synthesized cellulose microfibers supported reduced graphene oxide composite was further characterized using Fourier-transform infrared spectroscopy, Raman spectroscopy and high resolution scanning electron microscopy. Cyclic voltammetry studies reveal that cellulose microfibers supported reduced graphene oxide composite modified screen-printed carbon electrode exhibits a superior electro-reduction ability and lower reduction potential towards fenitrothion compared to screen-printed carbon electrodes modified with graphene oxide, graphene oxide-cellulose microfibers, and reduced graphene oxide. Furthermore, cellulose microfibers supported reduced graphene oxide composite modified electrode showed 141 mV lower reduction potential towards fenitrothion than the chemically reduced graphene oxide- cellulose microfibers composite modified screen-printed carbon electrode. The effect of accumulation time, catalyst loading, scan rate and pH for the detection of fenitrothion has been studied and discussed. Differential pulse voltammetric studies show that the fabricated composite electrode can detect the fenitrothion in a wider linear response range up to 1.134 mM with a detection limit of 8 nM. To validate the proof of concept, the fabricated sensor was successfully applied for the detection of fenitrothion in different water samples.
机译:在过去几十年中,由于其独特的物理化学性质,碳水化合物聚合物的合成掺入石墨烯或石墨烯氧化物的含量在不同的学科中受到更大的关注。在这种情况下,我们报告了纤维素微纤维的容易电化学合成支持的石墨烯氧化物的纤维素,其朝向增强且较低的FENITOLION电化学检测。使用傅里叶变换红外光谱,拉曼光谱和高分辨率扫描电子显微镜进一步表征了负载的石墨烯氧化物复合物的合成纤维素微纤维。循环伏安法研究表明,与用石墨烯氧化物,石墨烯氧化物 - 纤维素微纤维改性的丝网印刷碳电极相比,循环伏安法研究支持的纤维素微纤维的还原氧化物复合改性丝网印刷碳电极表现出优异的电解能力和朝向FENITROPON的降低电位。还原氧化物氧化物。此外,负载纤维素微纤维的还原的石墨烯复合电极显示出比化学减少的石墨烯氧化物微纤维复合改性丝网印刷碳电极的141mV降低趋向于抗剥离的潜力。研究了并讨论了累积时间,催化剂负荷,扫描速率和pH检测的效果。差分脉冲伏安的研究表明,制造的复合电极可以检测更宽的线性响应中的飞逸,其高达1.134 mm,检测限为8nm。为了验证概念证明,制造的传感器已成功应用于在不同水样中的脱氮检测。

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