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High rate-performance supercapacitor based on nitrogen-doped hollow hexagonal carbon nanoprism arrays with ultrathin wall thickness in situ fabricated on carbon cloth
被引:68
|作者:
He, Shuijian
[1
,2
,3
]
Zhang, Chunmei
[1
,2
]
Du, Cheng
[1
,4
]
Cheng, Chunfeng
[1
,2
]
Chen, Wei
[1
,4
]
机构:
[1] Chinese Acad Sci, Changchun Inst Appl Chem, State Key Lab Electroanalyt Chem, Changchun 130022, Jilin, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100099, Peoples R China
[3] Western Univ, Dept Chem, London, ON N6A 5B7, Canada
[4] Univ Sci & Technol China, Hefei 230029, Anhui, Peoples R China
基金:
中国国家自然科学基金;
关键词:
Carbon cloth;
Chemical vapor deposition;
ZnO template;
Hexagonal carbon nanoprism;
Rate performance;
Supercapacitor;
HIERARCHICAL POROUS CARBON;
ACTIVATED CARBON;
TEMPLATE SYNTHESIS;
MNO2;
NANOSHEETS;
ENERGY DENSITY;
ZINC-OXIDE;
GRAPHENE;
CAPACITANCE;
FOAM;
ELECTRODES;
D O I:
10.1016/j.jpowsour.2019.226701
中图分类号:
O64 [物理化学(理论化学)、化学物理学];
学科分类号:
070304 ;
081704 ;
摘要:
Free-standing carbon materials are promising supercapacitor electrode materials due to their outstanding properties, such as simple assemble process, high rate performance and good stability etc. We present here the fabrication of novel nitrogen-doped hollow hexagonal carbon nanoprism arrays on carbon fiber cloth for supercapacitor via chemical vapor deposition with ZnO as the sacrifice template. The hexagonal nanoprism structure of ZnO template can be well duplicated by ultrathin nitrogen-doped carbon layer through an in situ carbon deposition process. In this method, the template-removing step is not necessary attributed to the carbothermal reduction reaction between ZnO and carbon during the chemical vapor deposition process. The carbon fibers serve as highways for rapid electron transfer. Meanwhile, the in situ growth of nanoprism arrays on carbon fiber results in intact interface and low interface resistance. The open channel structure of the carbon arrays can shorten the ions diffusion path and facilitate the fast electrolyte transport. All these structural advantages contribute to the excellent rate performance of the fabricated carbon composite with scan rate and current density reaching up to 20 V s(-1) and 300 mA cm(-2), respectively. The present work paves a new way for designing high-rate and highly stable carbon electrode materials for supercapacitors.
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