超级电容器用石墨烯基材料

A. J. Akhtar
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引用次数: 3

摘要

石墨烯是一种单原子厚度的二维纳米结构薄膜,由于其优越的导电性、大的表面积、良好的化学稳定性和优异的机械性能而引起了研究人员的注意。这些非凡的特性使石墨烯成为储能应用的合适竞争者。然而,由于巨大的层间范德华引力,石墨烯层的团聚和重新堆叠严重阻碍了超级电容器的性能。已经引入了几种策略来克服限制,并将石墨烯确定为超级电容器的理想候选者。导电聚合物(CP)或金属氧化物(MO)与石墨烯作为电极材料的结合有望提高超级电容器的性能。本章总结了近年来关于各种CP/石墨烯复合材料和MO/石墨烯复合材料作为超级电容器电极材料的报道,重点介绍了两种基本的超级电容器机制(edlc和伪电容器)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Graphene-Based Materials for Supercapacitor
Graphene, a one-atomic-thick film of two-dimensional nanostructure, has piqued the attention of researchers due to its superior electrical conductivity, large surface area, good chemical stability, and excellent mechanical behaviour. These extraordinary properties make graphene an appropriate contender for energy storage applications. However, the agglomeration and re-stacking of graphene layers due to the enormous interlayer van der Waals attractions have severely hampered the performance of supercapacitors. Several strategies have been introduced to overcome the limitations and established graphene as an ideal candidate for supercapacitor. The combination of conducting polymer (CP) or metal oxide (MO) with graphene as electrode material is expected to boost the performance of supercapacitors. Recent reports on various CP/graphene composites and MO/graphene composites as supercapacitor electrode materials are summarised in this chapter, with a focus on the two basic supercapacitor mechanisms (EDLCs and pseudocapacitors).
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