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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Nanolayers of carbon protected copper oxide nanocomposite for high performance energy storage and non-enzymatic glucose sensor
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Nanolayers of carbon protected copper oxide nanocomposite for high performance energy storage and non-enzymatic glucose sensor

机译:用于高性能储能和非酶葡萄糖传感器的碳保护铜氧化物纳米复合材料的纳米组

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摘要

Nanolayers of carbon shell protected nanorods-like copper oxide (CuO-NC) material were prepared via a simple chemical synthesis method. A small molecule compound such as dopamine (DA) was used as carbon precursors. The prepared nanostructured materials were characterized by various techniques and used as bifunctional electrode materials for supercapacitor and non-enzymatic glucose bio-sensing. The electrochemical performance suggested that bifunctional CuO-NC materials provided a high specific capacitance of 247 F g(-1) at a current density of 2.5 A g(-1). Remarkably, the specific capacitance increased as a function of cycle numbers, and a maximum capacitance of 364 F g(-1) was reached and sustained. Furthermore, the glucose-sensing performance was investigated and an excellent sensitivity value of 272.6 mu A mM(-1) cm(-2) was achieved with a low limit of detection (0.14 nM). These excellent activities are mainly attributed to the presence of carbon shell, which acted as high active sites and enhanced electronic conductive paths for CuO-NC. The carbon shell also provided fast electron-transportation and effective protection of the nanorod structures under harsh redox condition, leading to excellent electrochemical activity. (C) 2021 Elsevier B.V. All rights reserved.
机译:通过简单的化学合成方法制备了碳壳保护的氧化铜(CuO-NC)等纳米棒材料的纳米层。一种小分子化合物,如多巴胺(DA)被用作碳前体。通过各种技术对所制备的纳米结构材料进行了表征,并将其用作超级电容器和非酶葡萄糖生物传感的双功能电极材料。电化学性能表明,当电流密度为2.5ag(-1)时,双功能CuO-NC材料具有247fg(-1)的高比电容。值得注意的是,比电容随着循环次数的增加而增加,达到并维持了364 F g(-1)的最大电容。此外,对葡萄糖传感性能进行了研究,获得了272.6μA mM(-1)cm(-2)的良好灵敏度值,检测下限为0.14 nM。这些优异的活性主要归功于碳壳的存在,碳壳作为CuO-NC的高活性中心和增强的电子导电路径。碳壳还提供了快速的电子传输和在苛刻的氧化还原条件下对纳米棒结构的有效保护,从而产生了优异的电化学活性。(c)2021爱思唯尔B.V.保留所有权利。

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