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Graphene/polypyrrole-coated carbon nanofiber core-shell architecture electrode for electrochemical capacitors

机译:石墨烯/聚吡咯涂层碳纳米纤维芯 - 壳体壳体电极用于电化学电容器

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摘要

Herein, we report a two-step electrospinning and potentiostatic electrodeposition method to fabricate electrodes with graphene/polypyrrole-coated carbon nanofiber core-shell architecture for supercapacitor applications. The electrospun carbon nanofiber core acts as an electrically conductive substrate that enables the incorporation of the graphene/polypyrrole shell. Constructing a porous and interconnected one-dimensional configuration with a carbon nanofiber core facilitates the maximum electrochemical utilization of the graphene/polypyrrole shell. The addition of graphene significantly decreases the charge transfer resistance of the electrode by reducing the distance for electron shuttling in the polypyrrole chains for rapid electrochemical redox reactions. As a consequence, the specific capacitance of the core-shell electrode was enhanced up to 386 F g(-1) at 2 mV s(-1). The enhanced conductivity and improved stability of the core-shell composite electrode is able to retain 84% of its initial capacitance value over 1000 charge/discharge cycles. The excellent electrochemical performance demonstrates that electrodes with a graphene/polypyrrole-coated carbon nanofiber core-shell architecture have great potential in electrochemical energy conversion and storage devices.
机译:在此,我们报告了一种两步的静电纺丝和电位电沉积电沉积方法,用于制造具有石墨烯/聚吡咯涂层的碳纳米河核心壳架构的电极,用于超级电容器应用。电纺碳纳米纤维芯充当导电基底,其能够掺入石墨烯/聚吡咯壳。用碳纳米纤维芯构建多孔和互连的一维构型有助于石墨烯/聚吡咯壳的最大电化学利用。石墨烯的加入显着降低电极的电荷传递电阻通过减少光吡咯链中的电子穿梭的距离,用于快速电化学氧化还原反应。结果,在2mV S(-1)下,核 - 壳电极的比电容高达386f g(-1)。增强的导电性和改进的核心壳复合电极的稳定性能够在1000充电/放电循环中保留其初始电容值的84%。优异的电化学性能表明,具有石墨烯/聚吡咯涂覆的碳纳米纤维芯壳架构的电极在电化学能量转换和存储装置中具有很大的潜力。

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  • 来源
    《RSC Advances》 |2015年第17期|共8页
  • 作者单位

    Univ Malaya Dept Phys Low Dimens Mat Res Ctr Fac Sci Kuala Lumpur 50603 Malaysia;

    Univ Malaya Dept Phys Low Dimens Mat Res Ctr Fac Sci Kuala Lumpur 50603 Malaysia;

    Univ Malaya Dept Phys Low Dimens Mat Res Ctr Fac Sci Kuala Lumpur 50603 Malaysia;

    Univ Malaya Dept Phys Low Dimens Mat Res Ctr Fac Sci Kuala Lumpur 50603 Malaysia;

    Univ Putra Malaysia Dept Chem Fac Sci Upm Serdang 43400 Selangor Malaysia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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