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Electrospinning as a route to advanced carbon fibre materials for selected low-temperature electrochemical devices:A review

机译:静电纺丝作为用于选定的低温电化学装置的先进碳纤维材料的途径:综述

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摘要

Electrospinning has been proven as a highly versatile fabrication method for producing nano-structured fibres with controllable morphology,of both the fibres themselves and the void structure of the mats.Additionally,it is possible to use heteroatom doped polymers or to include catalytic precursors in the electrospinning solution to control the surface properties of the fibres.These factors make it an ideal method for the production of electrodes and flow media for a variety of electrochemical devices,enabling reduction in mass transport and activation overpotentials and therefore increasing efficiency.Moreover,the use of biomass as a polymer source has recently gained attention for the ability to embed sustainable principles in the materials of electrochemical devices,complementing their ability to allow an increase in the use of renewable electricity via their application.In this review,the historical and recent developments of electrospun materials for application in redox flow batteries,fuel cells,metal air batteries and supercapacitors are thoroughly reviewed,including an overview of the electrospinning process and a guide to best practice.Finally,we provide an outlook for the emerging use of this process in the field of electrochemical energy devices with the hope that the combination of tailored microstructure,surface functionality and computer modelling will herald a new era of bespoke functional materials that can significantly improve the performance of the devices in which they are used.
机译:被证明的静电纺丝作为一种高通用的制造方法,用于生产具有可控形态的纳米结构纤维,纤维本身和垫子的空隙结构。解法,可以使用杂原子掺杂的聚合物或包括催化前体静电纺丝溶液控制纤维的表面性质。这些因素使其成为各种电化学装置生产电极和流动介质的理想方法,从而降低了大规模运输和激活的流通,从而提高了效率。作为聚合物来源的生物量最近获得了嵌入了电化学装置材料中的可持续原理的能力,补充了它们通过其应用程序增加可再生电力的能力。在此评论中,历史和最近的发展氧化还原流动备用电纺材料的应用渗透,燃料电池,金属空气电池和超级电容器经过彻底审查,包括静电纺线过程的概述和最佳实践指南。最后,我们提供了在电化学能量装置领域中出现这种过程的新兴使用的前景。希望定制微观结构,表面功能和计算机建模的组合将使定制功能材料的新时代,可以显着提高它们使用的装置的性能。

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  • 来源
    《能源化学:英文版》 |2021年第008期|P.492-529I0011|共39页
  • 作者单位

    The Electrochemical Innovation Lab Dept.of Chemical Engineering University College London Torrington Place WC1E 7JE London UK;

    The Electrochemical Innovation Lab Dept.of Chemical Engineering University College London Torrington Place WC1E 7JE London UK;

    Queen Mary University of London School of Engineering and Materials Science Mile End Road E14NS London UK;

    Queen Mary University of London School of Engineering and Materials Science Mile End Road E14NS London UK;

    Department of Chemical Engineering University of Waterloo Waterloo Canada;

    Department of Chemical Engineering University of Waterloo Waterloo Canada;

    Department of Chemical Engineering Imperial College London South Kensington Campus SW72AZ London UK;

    Department of Chemical Engineering Imperial College London South Kensington Campus SW72AZ London UK;

    Department of Chemical Engineering Imperial College London South Kensington Campus SW72AZ London UK;

    The Electrochemical Innovation Lab Dept.of Chemical Engineering University College London Torrington Place WC1E 7JE London UK;

    The Electrochemical Innovation Lab Dept.of Chemical Engineering University College London Torrington Place WC1E 7JE London UK;

    The Electrochemical Innovation Lab Dept.of Chemical Engineering University College London Torrington Place WC1E 7JE London UK;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 物理化学(理论化学)、化学物理学;
  • 关键词

    Electrospinning; Redox flow batteries; Fuel cells; Metal-air batteries; Supercapacitors;

    机译:静电纺丝;氧化还原电池;燃料电池;金属电池;超级电容器;
  • 入库时间 2022-08-19 04:57:48
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