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首页> 外文期刊>Electrochimica Acta >A novel strategy for the high performance supercapacitor based on polyacrylonitrile-derived porous nanofibers as electrode and separator in ionic liquid electrolyte
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A novel strategy for the high performance supercapacitor based on polyacrylonitrile-derived porous nanofibers as electrode and separator in ionic liquid electrolyte

机译:基于聚丙烯腈衍生的多孔纳米纤维作为电极和离子液体电解质中的电极和隔膜的高性能超级涂物的新策略

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摘要

A novel strategy for the supercapacitor with high energy and power performance using porous nanofibers as the electrodes and separators in ionic liquid electrolyte is proposed. Polyacrylonitrile (PAN) porous nanofibers separator is preparedviaelectrospinning and solvent phase separation process, which exhibit high electrolyte uptake and ionic mobility. The porous carbon nanofibers electrode derived from PAN porous nanofibers shows high conductivity, specific surface and ionic mobility. The porous nanofibers are characterized by scanning electron microscopy, thermal gravimetric and contact angle analysisetc. The electrochemical performances of porous nanofibers are investigated by electrochemical measurements. The influence of pore structure on the electrochemical performance of porous nanofibers is evaluated. The supercapacitor constructed by porous nanofibers as electrode and separator in ionic liquid electrolyte exhibits high specific capacity (248.3?F?g?1), low internal resistance (0.82?Ω), wide electrochemical stability window (3.5?V) and good cyclstabilty (99.8%). The results show that electrospinning is an efficient technique for producing separator and electrode materials of supercapacitor without compromising the eco-friendliness and raw material cost.
机译:提出了一种具有高能量和功率性能的超级电容器的新策略,用多孔纳米纤维作为离子液体电解质中的电极和隔膜。聚丙烯腈(PAN)多孔纳米纤维分离器是制备高温源和溶剂相分离过程,其表现出高电解质吸收和离子迁移率。衍生自锅多孔纳米纤维的多孔碳纳米纤维电极显示出高导电性,比表面和离子迁移率。多孔纳米纤维的特征在于扫描电子显微镜,热重度和接触角分析。通过电化学测量研究多孔纳米纤维的电化学性能。评价孔隙结构对多孔纳米纤维的电化学性能的影响。由多孔纳米纤维作为电极和离子液体电解质中的隔膜构成的超级电容器表现出高的比容量(248.3〜f≤g≤1),低内阻(0.82ΩΩ),宽的电化学稳定性窗口(3.5?V)和良好的CycleStabilty( 99.8%)。结果表明,静电纺丝是生产超级电容器分离器和电极材料的有效技术,而不会影响生态友好性和原料成本。

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