Capacitance of carbon-based electrical double-layer capacitors

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作者
Hengxing Ji
Xin Zhao
Zhenhua Qiao
Jeil Jung
Yanwu Zhu
Yalin Lu
Li Li Zhang
Allan H. MacDonald
Rodney S. Ruoff
机构
[1] The University of Texas at Austin,Department of Mechanical Engineering and the Materials Science and Engineering Program
[2] University of Science and Technology of China,Department of Materials Science and Engineering and CAS Key Laboratory of Materials for Energy Conversion
[3] The University of Texas at Austin,Department of Physics
[4] Present address: Donghua University,undefined
[5] College of Material Science & Engineering,undefined
[6] State Key Laboratory for Modification of Chemical Fibers and Polymer Materials,undefined
[7] Shanghai 201620,undefined
[8] China,undefined
[9] Present address: Department of Physics and ICQD/HFNL,undefined
[10] University of Science and Technology of China,undefined
[11] Hefei,undefined
[12] Anhui 230026,undefined
[13] China,undefined
[14] Present address: Graphene Research Centre and Department of Physics,undefined
[15] National University of Singapore,undefined
[16] 2 Science Drive 3,undefined
[17] Singapore 117551,undefined
[18] Singapore,undefined
[19] Present address: Institute of Chemical and Engineering Sciences,undefined
[20] A*Star,undefined
[21] 1 Pesek Road,undefined
[22] Jurong Island,undefined
[23] Singapore 627833,undefined
[24] Singapore,undefined
[25] Present address: Center for Multidimensional Carbon Materials (CMCM),undefined
[26] Institute for Basic Science (IBS) Center on the UNIST Campus. Department of Chemistry and School of Materials Science Ulsan National Institute of Science & Technology (UNIST),undefined
[27] Ulsan 689-798,undefined
[28] Republic of Korea,undefined
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摘要
Experimental electrical double-layer capacitances of porous carbon electrodes fall below ideal values, thus limiting the practical energy densities of carbon-based electrical double-layer capacitors. Here we investigate the origin of this behaviour by measuring the electrical double-layer capacitance in one to five-layer graphene. We find that the capacitances are suppressed near neutrality, and are anomalously enhanced for thicknesses below a few layers. We attribute the first effect to quantum capacitance effects near the point of zero charge, and the second to correlations between electrons in the graphene sheet and ions in the electrolyte. The large capacitance values imply gravimetric energy storage densities in the single-layer graphene limit that are comparable to those of batteries. We anticipate that these results shed light on developing new theoretical models in understanding the electrical double-layer capacitance of carbon electrodes, and on opening up new strategies for improving the energy density of carbon-based capacitors.
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