Towards ultrahigh volumetric capacitance: graphene derived highly dense but porous carbons for supercapacitors

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作者
Ying Tao
Xiaoying Xie
Wei Lv
Dai-Ming Tang
Debin Kong
Zhenghong Huang
Hirotomo Nishihara
Takafumi Ishii
Baohua Li
Dmitri Golberg
Feiyu Kang
Takashi Kyotani
Quan-Hong Yang
机构
[1] School of Chemical Engineering and Technology,
[2] Tianjin University,undefined
[3] Engineering Laboratory for Functionalized Carbon Materials,undefined
[4] Graduate School at Shenzhen,undefined
[5] Tsinghua University,undefined
[6] World Premier International (WPI) Center for Materials Nanoarchitectonics (MANA),undefined
[7] National Institute for Materials Science (NIMS),undefined
[8] Laboratory of Advanced Materials,undefined
[9] School of Materials Science and Engineering,undefined
[10] Tsinghua University,undefined
[11] Institute of Multidisciplinary Research for Advanced Materials,undefined
[12] Tohoku University,undefined
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摘要
A small volumetric capacitance resulting from a low packing density is one of the major limitations for novel nanocarbons finding real applications in commercial electrochemical energy storage devices. Here we report a carbon with a density of 1.58 g cm−3, 70% of the density of graphite, constructed of compactly interlinked graphene nanosheets, which is produced by an evaporation-induced drying of a graphene hydrogel. Such a carbon balances two seemingly incompatible characteristics: a porous microstructure and a high density and therefore has a volumetric capacitance for electrochemical capacitors (ECs) up to 376 F cm−3, which is the highest value so far reported for carbon materials in an aqueous electrolyte. More promising, the carbon is conductive and moldable and thus could be used directly as a well-shaped electrode sheet for the assembly of a supercapacitor device free of any additives, resulting in device-level high energy density ECs.
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