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Facile synthesis of Ni 0.5 Mn 0.5 Co 2 O 4 nanoflowers as high‐performance electrode material for supercapacitors
Author(s) -
Mu Hao,
Su Xinghua,
Zhao Zhenhuan,
Han Chenxi,
Wang Zhenjun,
Zhao Peng
Publication year - 2019
Publication title -
journal of the american ceramic society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.9
H-Index - 196
eISSN - 1551-2916
pISSN - 0002-7820
DOI - 10.1111/jace.16610
Subject(s) - electrochemistry , materials science , supercapacitor , transition metal , electrode , nanostructure , microstructure , hydrothermal synthesis , chemical engineering , hydrothermal circulation , metal , specific surface area , nickel , nanotechnology , catalysis , metallurgy , chemistry , biochemistry , engineering
The rational synthesis of mixed transition metal oxides (MTMOs) with three‐dimensional hierarchical porous structure has been proved to be an effective strategy for improving electrochemical performances of binary metal oxides. Herein, the hierarchically Ni 1‐ x Mn x Co 2 O 4 nanoflowers are synthesized by a facile hydrothermal method combined with subsequent heat‐treatment. It is found that Ni/Mn atom ratio has a significant influence on the microstructures and electrochemical properties of Ni 1‐ x Mn x Co 2 O 4 . The Ni 0.5 Mn 0.5 Co 2 O 4 sample with a Ni/Mn atom ratio of 1 exhibits the highest specific capacity of 366 F/g at a current density of 1 A/g as compared to the other Ni 1‐ x Mn x Co 2 O 4 samples. In addition, Ni 0.5 Mn 0.5 Co 2 O 4 displays high rate capability and cycling performance. The excellent electrochemical performances of Ni 0.5 Mn 0.5 Co 2 O 4 could be ascribed to the large surface area and high mesoporosity, leading to the increased accessible surface for ion access and the rapid electrochemical reactions. The as‐synthesized Ni 0.5 Mn 0.5 Co 2 O 4 nanoflowers could be used as a potential electrode materials for Supercapacitors. Furthermore, this study provides a facile method to synthesize other MTMOs with three‐dimensional hierarchical nanostructure. An asymmetric supercapacitor is assembled with Ni 0.5 Mn 0.5 Co 2 O 4 as the positive electrode and activated carbon as the negative electrode. The supercapacitor shows an energy density of 20.2 Wh/kg at a power density of 700 W/kg. Cycling stability is achieved with 82% retention after 5000 charge‐discharge cycles.