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碳质纤维的微观结构设计:迈向高性能可编织/可穿戴超级电容器的一种有前景的策略。

Microstructure Design of Carbonaceous Fibers: A Promising Strategy toward High-Performance Weaveable/Wearable Supercapacitors.

作者信息

Yu Chenyang, An Jianing, Zhou Ruicong, Xu Hai, Zhou Jinyuan, Chen Qiang, Sun Gengzhi, Huang Wei

机构信息

School of Materials Science and Engineering, Henan Polytechnic University, Jiaozuo, 454003, P. R. China.

Institute of Advanced Materials (IAM), Nanjing Tech University (NanjingTech), Nanjing, 211816, P. R. China.

出版信息

Small. 2020 Jun;16(25):e2000653. doi: 10.1002/smll.202000653. Epub 2020 May 20.

DOI:10.1002/smll.202000653
PMID:32432831
Abstract

Fiber-based supercapacitors (FSCs) possess great potential as an ideal type of power source for future weaveable/wearable electronics and electronic-textiles. The performance of FSCs is, without doubt, primarily determined by the properties of fibrous electrodes. Carbonaceous fibers, e.g., commercial carbon fibers, newly developed graphene fibers, and carbon nanotube fibers, are deemed as promising materials for weaveable/wearable supercapacitors owing to their exotic properties including high tensile strength and robustness, excellent electrical conductivity, good flexibility, and environmental stability. Nevertheless, bare carbonaceous fiber normally exhibits low capacitance originating from electric double-layer capacitance, which remains unsatisfactory for efficiently powering wearable and portable devices. Numerous efforts have been devoted to tailoring fiber properties by hybridizing pseudocapacitive materials, and impressive progress has been achieved thus far. Herein, the microstructures of pristine carbonaceous fibers are introduced in detail, and the recent advances in rational nano/microstructure design of their hybrids, which provides the feasibility to achieve the synergistic interaction between conductive agents and pseudocapacitive nanomaterials but are normally overlooked, are comprehensively reviewed. Besides, the challenges in developing high-performance fibrous electrodes are also elaborately discussed.

摘要

基于纤维的超级电容器(FSCs)作为未来可编织/可穿戴电子产品及电子织物的理想电源类型具有巨大潜力。毫无疑问,FSCs的性能主要由纤维电极的特性决定。碳质纤维,如商业碳纤维、新开发的石墨烯纤维和碳纳米管纤维,因其具有诸如高拉伸强度和坚固性、优异的导电性、良好的柔韧性以及环境稳定性等独特性能,被视为可编织/可穿戴超级电容器的有前景材料。然而,裸碳质纤维通常由于双电层电容而表现出低电容,这对于高效为可穿戴和便携式设备供电仍不令人满意。人们已投入大量努力通过与赝电容材料混合来调整纤维性能,迄今为止已取得了令人瞩目的进展。在此,详细介绍了原始碳质纤维的微观结构,并全面综述了其杂化物在合理的纳米/微观结构设计方面的最新进展,这种设计为实现导电剂与赝电容纳米材料之间的协同相互作用提供了可行性,但通常被忽视。此外,还详细讨论了开发高性能纤维电极所面临的挑战。

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