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Non-enzymatic glucose sensor based on micro-/nanostructured Cu/Ni deposited on graphene sheets

机译:基于沉积在石墨烯片上的微/纳米结构Cu / Ni的非酶促葡萄糖传感器

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摘要

The response performance of enzyme-free glucose sensors can be improved by using high conductivity and by loading redox probes with high electrochemical activity onto a graphene skeleton with a large surface area and by employing a design involving a binderless sensor structure. We prepared a Cu/Ni/graphene electrode containing neither a polymeric binder nor biofilm. Instead, graphene was grown vertically on the surface of the current collector by direct current (DC) arc plasma jet chemical vapor deposition (CVD) to form a structure consisting of a high-conductivity three-dimensional network. A large number of Ni and Cu micro-/nanostructured redox probes, which were prepared by square wave pulsed electrodeposition, was loaded onto the graphene skeleton. The reasons for the advantageous effect of these Cu/Ni/graphene electrodes on the performance were investigated by characterizing the morphology, structure, and composition of the sensitive films, and by combining the impedance characteristics of each component and the response characteristics to glucose. The results showed that the fabrication of Cu/Ni/graphene as the sensitive layer combined the performance characteristics of Ni, Cu, and graphene nanomaterials to exhibit excellent electrocatalytic activity toward glucose oxidation; three linear working curves were obtained in a wide concentration range of 0.005-2174 mu M, with an ultra-low detection limit of 0.0027 mu M (S/N = 3). The glucose sensor exhibited high anti-interference properties against sucrose, fructose, xylose, maltose, lactose, ascorbic acid, dopamine, and uric acid.
机译:通过使用高导电性和通过用大表面积的石墨烯骨架加载氧化还原探针并通过使用涉及粘合剂传感器结构的设计来改善酶无血糖传感器的响应性能。我们制备了含有聚合物粘合剂或生物膜的Cu / Ni /石墨烯电极。相反,通过直流(DC)电弧等离子体喷射化学气相沉积(CVD)垂直地在集电器的表面上垂直生长石墨烯,以形成由高导电性三维网络组成的结构。将通过方波脉冲电沉积的大量Ni和Cu微/纳米结构氧化还原探针加载到石墨烯骨架上。通过表征敏感膜的形态,结构和组成,并通过将每个组分的阻抗特性与葡萄糖组合来研究这些Cu / Ni /石墨烯电极对性能上的有利效果的原因。结果表明,Cu / Ni /石墨烯作为敏感层的制备结合了Ni,Cu和石墨烯纳米材料的性能特征,以表现出优异的葡萄糖氧化的电催化活性;在0.005-2174μm的宽浓度范围内获得三个线性工作曲线,超低检测限为0.0027μm(s / n = 3)。葡萄糖传感器表现出对蔗糖,果糖,木糖,麦芽糖,乳糖,抗坏血酸,多巴胺和尿酸的高抗干扰性。

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