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Sn doped ZnMn2O4 microspheres with excellent electrochemical performance and high cycle stability

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成果类型:
期刊论文
作者:
Chen, Chuansheng;Huang, Yi;Fang, Qun;Qian, Guoping
通讯作者:
Chuansheng Chen
作者机构:
[Fang, Qun; Qian, Guoping; Huang, Yi; Chen, Chuansheng] Changsha Univ Sci & Technol, Coll Mat Sci & Engn, Sch Traff & Transportat Engn, Changsha 410114, Peoples R China.
通讯机构:
[Chuansheng Chen] C
College of Materials Science and Engineering, School of Traffic and Transportation Engineering, Changsha University of Science and Technology, Changsha 410114, People’s Republic of China
语种:
英文
关键词:
ZnMn2O4 sphere;Sn-doping;Spherical shell;Electrochemical performance
期刊:
Journal of Alloys and Compounds
ISSN:
0925-8388
年:
2021
卷:
877
页码:
160218
基金类别:
CRediT authorship contribution statement Chuansheng Chen: Supervision, Investigation, acquisition, Data analysis, Writing - review & editing. Yi Huang: Experimental operation, Data curation and analysis, Writing - original draft preparation. Qun Fang: Experimental operation, Investigation, Data curation and analysis. Guoping Qian: Writing - review & editing.
机构署名:
本校为第一机构
院系归属:
交通运输工程学院
材料科学与工程学院
摘要:
Sn-doping ZnMn2O4 (Sn-ZMO) porous microspheres with shell structure were synthesized by utilizing SnO as Sn source. The effect of Sn content on its structure, morphology, and performance was investigated. Sn doping can increase the crystal plane spacing of ZnMn2O4 (ZMO) microspheres and enhance the electrochemical performance of ZMO materialis. When the Sn-doping content is 0.5%, the specific capacitance of Sn-ZMO microspheres is 18.5% higher than that of pure ZMO microsphere, which reaches 530 F/g under the current density of 1 A/g. Furthermore, the cycle stability has a significant promotion...

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