High-temperature deoxygenation-created highly porous graphitic carbon nanosheets for ultrahigh-rate supercapacitive energy storage

被引:1
作者
Xuan Wang [1 ]
Shanyong Chen [1 ]
Chang Liu [1 ]
Yi Yu [2 ]
Mingjiang Xie [2 ]
Xuefeng Guo [1 ]
机构
[1] Key Lab of Mesoscopic Chemistry MOE, School of Chemistry and Chemical Engineering, Nanjing University
[2] Hubei Key Laboratory for Processing and Application of Catalytic Materials, Huanggang Normal University
基金
美国国家科学基金会; 中央高校基本科研业务费专项资金资助;
关键词
D O I
暂无
中图分类号
TQ127.11 []; TB383.1 []; TM53 [电容器];
学科分类号
070205 ; 080501 ; 080801 ; 0817 ; 1406 ;
摘要
Developing carbon-based supercapacitors with high rate capability is of great importance to meet the emerging demands for devices that requires high energy density as well as high power density.However, it is hard to fabricate a nanocarbon with high electro-active surface area meanwhile maintaining superior conductivity to ensure the high rate capability since excellent conductivity is usually realized by high temperature graphitization, which would lead to the structural collapse and sintering resulting in low surface area. Herein, we reported a highly porous graphitic carbon nanosheet with an unprecedented rate capability of 98% of its initial capacitance from 0.5 to 50 A/g for ultrahigh-rate supercapacitive energy storage. These hierarchical mesoporous carbon nanosheets(HMCN) were fabricated by a template induced catalytic graphitization approach, in which sheet-like Mg(OH)2was employed as catalytic template in situ catalytically polymerizing of catechol and formaldehyde and catalytically graphitizing of the formed carbon skeleton. Upon the co-effect of template(avoiding the sintering) and the deoxygenation(creating the pores) during the high temperature graphitization process, the obtained HMCN material possesses nanosheet morphology with highly porous graphitic microstructure rich in mesoporosity, large in surface area(2316 m~2/g), large in pore volume(3.58 cm~3/g) and excellent in conductivity(109.8 S/cm). In 1.0 M TEABF4/AN, HMCN exhibits superior supercapacitive performance including large energy density of 52.2 Wh/kg at high power density of 118 k W/kg, long-cycling stability and excellent rate capability, making HMCN a promising electrode material for supercapacitor devices.
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收藏
页码:521 / 527
页数:7
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