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作为混合超级电容器先进电极的NiCoO@MnO/泡沫镍/MnO三明治的非常规结构

Unusual formation of NiCoO@MnO/nickel foam/MnO sandwich as advanced electrodes for hybrid supercapacitors.

作者信息

Guo Chunli, Li Jie, Chu Yanting, Li Haibo, Zhang Huaiping, Hou Lifeng, Wei Yinghui, Liu Jing, Xiong Shenglin

机构信息

College of Materials Science and Engineering, Taiyuan University of Technology, Taiyuan, Shanxi 030024, P.R. China.

Key Laboratory of Colloid and Interface Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, and State Key Laboratory of Crystal Materials, Shandong University, Jinan, 250100, PR China.

出版信息

Dalton Trans. 2019 Jun 7;48(21):7403-7412. doi: 10.1039/c9dt00696f. Epub 2019 Apr 17.

Abstract

A facile three-step method is designed for large-scale preparation of a NiCoO@MnO/nickel foam/MnO sandwich architecture with robust adhesion as an advanced electrode for high-performance supercapacitors. The synthesis contains the hydrothermal reaction of a cobalt-nickel hydroxide precursor on a nickel foam (NF) support and subsequent thermal conversion into spinel mesoporous NiCoO nanowire arrays, followed by a hydrothermal oxidation reaction to synthesize NiCoO@MnO/nickel foam/MnO sandwiches. Moreover, the tactics reported in this study enable easy control of the growth of NiCoO on one side of the NF and MnO nanosheets on both sides of the NF to obtain novel NiCoO@MnO/nickel foam/MnO sandwiches. Because of the unusual structural and compositional features, the obtained NiCoO@MnO/nickel foam/MnO sandwiches manifest excellent performance with high specific capacitance (1.70 C cm at 2 mA cm), exceptional rate capability (78.5% retention at 20 mA cm) and ultralong cycling stability (91% retention over 30 000 cycles at 20 mA cm) as a battery-type electrode material for supercapacitors. When further assembled into an aqueous hybrid supercapacitor, it can deliver an energy density of 53.5 W h kg at a power density of 80 W kg and 20.7 W h kg at 8 kW kg. This novel sandwich electrode provides a new idea for improving the electrochemical performance of hybrid supercapacitors.

摘要

设计了一种简便的三步法,用于大规模制备具有牢固附着力的NiCoO@MnO/泡沫镍/MnO三明治结构,作为高性能超级电容器的先进电极。合成过程包括在泡沫镍(NF)载体上进行氢氧化钴 - 镍前驱体的水热反应,随后热转化为尖晶石介孔NiCoO纳米线阵列,接着进行水热氧化反应以合成NiCoO@MnO/泡沫镍/MnO三明治。此外,本研究报道的策略能够轻松控制NF一侧的NiCoO生长以及NF两侧的MnO纳米片生长,从而获得新型的NiCoO@MnO/泡沫镍/MnO三明治。由于其独特的结构和组成特征,所制备的NiCoO@MnO/泡沫镍/MnO三明治作为超级电容器的电池型电极材料表现出优异的性能,具有高比电容(2 mA cm时为1.70 C cm)、出色的倍率性能(20 mA cm时保持78.5%)和超长循环稳定性(20 mA cm下30000次循环后保持91%)。当进一步组装成水系混合超级电容器时,在功率密度为80 W kg时可提供53.5 W h kg的能量密度,在8 kW kg时为20.7 W h kg。这种新型三明治电极对于提高混合超级电容器的电化学性能提供了新思路。

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