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Hierarchical Mesoporous 3D Flower-like CuCo2O4/NF for High-Performance Electrochemical Energy Storage

机译:分层介孔3D花状CuCo2O4 / NF用于高性能电化学储能

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摘要

Ternary spinel CuCo2O4 nanostructure clenches great potential as high-performance electrode material for next-generation energy storage systems because of its higher electrical conductivity and electrochemical activity. Carbon free and binder free 3D flower-like CuCo2O4 structure are grown on nickel foam (NF) via a facile hydrothermal synthesis method followed by annealing. The obtained CuCo2O4/NF is directly used as electrode for lithium ion batteries (LIBs) and supercapacitors (SCs) application. The electrochemical study of 3D flower-like CuCo2O4 as an electrode for LIB and SC shows highly mesoporous unique architecture plays important role in achieving high capacity/capacitance with superior cycle life. The high surface area and mesoporous nature not only offer sufficient reaction sites, but also can accelerate the liquid electrolyte to penetrate electrode and the ions to reach the reacting sites. In outcome, it exhibits highest capacity of 1160 mA h g−1 after 200 cycles when used as an anode for LIB and specific capacitance of 1002 F g−1 after 3000 cycles. The superior electrochemical of synthesized material is attributed to direct contact of electrode active material with good intrinsic electrical conductivity to the underneath conductive NF substrate builds up an express path for fast ion and electron transfer.
机译:三元尖晶石CuCo2O4纳米结构因其较高的电导率和电化学活性而具有巨大的潜力,可作为下一代能量存储系统的高性能电极材料。通过便捷的水热合成方法,在无泡沫和无粘合剂的3D花状CuCo2O4结构上,在镍泡沫(NF)上生长,然后进行退火。所得的CuCo2O4 / NF可直接用作锂离子电池(LIB)和超级电容器(SCs)应用的电极。 3D花状CuCo2O4作为LIB和SC电极的电化学研究表明,高介孔的独特结构在实现高容量/电容和出色的循环寿命方面发挥着重要作用。高表面积和中孔性质不仅提供了足够的反应部位,而且还可以加速液体电解质渗透电极和离子以到达反应部位。结果,当用作LIB的阳极时,在200个循环后其最大容量为1160 mA h g -1 ,在3000个循环后其比电容为1002 F g -1 。合成材料的优异电化学性能归因于具有良好固有电导率的电极活性材料与下面的导电NF基底直接接触,从而建立了快速离子和电子转移的快速通道。

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