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A controllable top-down etching and in-situ oxidizing strategy: metal-organic frameworks derived α-Co/Ni(OH)2@Co3O4 hollow nanocages for enhanced supercapacitor performance.

Authors :
Bao, Yuxiang
Deng, Ying
Wang, Moze
Xiao, Zhenyu
Wang, Minghui
Fu, Yunlei
Guo, Ziyang
Yang, Yu
Wang, Lei
Source :
Applied Surface Science. Feb2020, Vol. 504, pN.PAG-N.PAG. 1p.
Publication Year :
2020

Abstract

• A controllable etching and in-situ oxidation strategy is employed. • A series of Co 3 O 4 embedded α-Co/Ni(OH) 2 hollow nanocages are fabircated. • Their composition can be adjusted by controlling the temperature and pH values. • The optimized product presents excellent supercapacitor performance. The rational design and controllable fabrication of functional heterostructure consisting of capacitive framework and insertion is recognized as an efficient strategy to develop electrode materials for enhanced supercapacitor performance. In this work, a controllable NaH 2 PO 2 etching and in-situ O 2 oxidation process is developed, and a series of Co 3 O 4 embedded α-Co/Ni(OH) 2 hollow nanocages are successfully constructed via metal-organic frameworks (ZIF-67) as template. The optimized heterostructure (α-Co/Ni(OH) 2 @Co 3 O 4 -70) effectively take the advantages of each component that rich electrolyte diffusion channels and abundant reaction active sites of α-Co/Ni(OH) 2 species, as well as excellent conductivity and stability of Co 3 O 4 species. Therefore, a high capacitance value of 1000 F g−1 at 1 A g−1 and excellent ratio performance of 74% capacitance retained from 1 A g−1 to 10 A g−1 is achieved. Meanwhile, the hybrid nanocages present an enhanced cycling stability of retaining its 72.34% original capacitance after 8000 charge-discharge cycles. Furthermore, the as-assembled α-Co/Ni(OH) 2 @Co 3 O 4 -70//AC device exhibits a high energy density of 23.88 W h kg−1 at a power density of 0.075 kW kg−1. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01694332
Volume :
504
Database :
Academic Search Index
Journal :
Applied Surface Science
Publication Type :
Academic Journal
Accession number :
141580940
Full Text :
https://doi.org/10.1016/j.apsusc.2019.144395