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Hollow nanostructures of metal oxides as next generation electrode materials for supercapacitors

机译:金属氧化物的空心纳米结构作为超级电容器的下一代电极材料

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摘要

Hollow nanostructures of copper oxides help to stabilize appreciably higher electrochemical characteristics than their solid counter parts of various morphologies. The specific capacitance values, calculated using cyclic voltammetry (CV) and charge-discharge (CD) studies, are found to be much higher than the values reported in literature for copper oxide particles showing  intriguing morphologies or even composites with trendy systems like CNTs, rGO, graphene, etc. The proposed cost-effective synthesis route makes these materials industrially viable for application in alternative energy storage devices. The improved electrochemical response can be attributed to effective access to the higher number of redox sites that become available on the surface, as well as in the cavity of the hollow particles. The ion transport channels also facilitate efficient de-intercalation, which results in the enhancement of cyclability and Coulombic efficiency. The charge storage mechanism in copper oxide structures is also proposed in the paper.
机译:氧化铜的中空纳米结构比其各种形态的固体对应部分有助于稳定更高的电化学特性。发现使用循环伏安法(CV)和充放电(CD)研究计算出的比电容值远远高于文献中报道的氧化铜颗粒的值,这些氧化铜颗粒表现出令人着迷的形态甚至是具有CNTs,rGO等趋势系统的复合材料拟议的具有成本效益的合成路线使这些材料在工业上可用于替代性储能设备。电化学反应的改善可归因于有效进入表面和中空颗粒腔中可用的大量氧化还原位点。离子传输通道还有助于有效的脱嵌,从而提高了可循环性和库仑效率。本文还提出了氧化铜结构中的电荷存储机理。

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