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三维分级核壳结构的CuCoO@Co(OH)纳米片作为柔性超级电容器的高性能电极材料。

Three-dimensional hierarchical core-shell CuCoO@Co(OH) nanoflakes as high-performance electrode materials for flexible supercapacitors.

作者信息

Chen Fei, Ji Yajun, Ren Fuyong, Tan Shufen, Wang Zhaoqi

机构信息

College of Science, University of Shanghai for Science and Technology, Jungong Road 334#, 200093 Shanghai, China.

College of Science, University of Shanghai for Science and Technology, Jungong Road 334#, 200093 Shanghai, China.

出版信息

J Colloid Interface Sci. 2021 Mar 15;586:797-806. doi: 10.1016/j.jcis.2020.11.004. Epub 2020 Nov 5.

DOI:10.1016/j.jcis.2020.11.004
PMID:33198984
Abstract

Rational design of composite electrode materials with novel nanostructures plays an important role in improving both high energy density and structure stability of flexible and wearable supercapacitors. Herein, numerous peculiar three-dimensional hierarchical core-shell CuCoO@Co(OH) nanoflakes directly grown on Ni foam are synthesized via a facile hydrothermal method and subsequent electrodeposition technique. Ultrathin Co(OH) nanosheets arrays vertically anchored on CuCoO nanoflakes can not only improve the electrical conductivity, but also provide interconnected channels for ion diffusion and enrich electrochemical active sites to boost faradaic redox reaction, leading to the enhanced electrochemical behavior. Excellent electrochemical performance of CuCoO@Co(OH) electrode can be reflected on a higher specific capacitance of 1558 F/g and lower resistance compared with that of the pristine CuCoO electrode. The asymmetric flexible supercapacitor assembled by the optimized CuCoO@Co(OH) electrode and activated carbon exhibits high energy density of 62.5 Wh/kg at 893 W/kg, outstanding cycle stability of 88.6% capacitance retention after 10,000 cycles and remarkable mechanical flexibility, performing the best electrochemical behavior among various metal oxides based asymmetric supercapacitors. All above results indicate that the resulted hierarchical core-shell CuCoO@Co(OH) electrode can be a promising candidate for flexible energy storage devices.

摘要

设计具有新颖纳米结构的复合电极材料对于提高柔性可穿戴超级电容器的高能量密度和结构稳定性起着重要作用。在此,通过简便的水热法和后续的电沉积技术,合成了大量直接生长在泡沫镍上的独特三维分级核壳结构CuCoO@Co(OH)纳米片。垂直锚定在CuCoO纳米片上的超薄Co(OH)纳米片阵列不仅可以提高电导率,还能为离子扩散提供相互连接的通道,并富集电化学活性位点以促进法拉第氧化还原反应,从而增强电化学性能。与原始CuCoO电极相比,CuCoO@Co(OH)电极优异的电化学性能体现在更高的比电容1558 F/g和更低的电阻上。由优化后的CuCoO@Co(OH)电极和活性炭组装而成的不对称柔性超级电容器在893 W/kg时具有62.5 Wh/kg的高能量密度、在10000次循环后具有88.6%的出色电容保持率的循环稳定性以及显著的机械柔韧性,在各种基于金属氧化物的不对称超级电容器中表现出最佳的电化学性能。所有上述结果表明,所得的分级核壳结构CuCoO@Co(OH)电极有望成为柔性储能器件的候选材料。

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