Review of nanostructured carbon materials for electrochemical capacitor applications: advantages and limitations of activated carbon, carbide‐derived carbon, zeolite‐templated carbon, carbon aerogels, carbon nanotubes, onion‐like carbon, and graphene

超级电容器 材料科学 碳化物衍生碳 石墨烯 纳米技术 碳纳米管 碳纤维 储能 气凝胶 电解质 碳纳米纤维 碳纳米管的潜在应用 电化学 复合材料 电极 化学 纳米管 复合数 功率(物理) 物理 物理化学 量子力学 碳纳米管的光学性质
作者
Wentian Gu,Gleb Yushin
出处
期刊:Wiley Interdisciplinary Reviews: Energy and Environment [Wiley]
卷期号:3 (5): 424-473 被引量:555
标识
DOI:10.1002/wene.102
摘要

Electric double layer capacitors, also called supercapacitors, ultracapacitors, and electrochemical capacitors, are gaining increasing popularity in high power energy storage applications. Novel carbon materials with high surface area, high electrical conductivity, as well as a range of shapes, sizes and pore size distributions are being constantly developed and tested as potential supercapacitor electrodes. This article provides an overview of the electrochemical studies on activated carbon, carbide derived carbon, zeolite‐templated carbon, carbon aerogel, carbon nanotube, onion‐like carbon, and graphene. We discuss the key performance advantages and limitations of various nanostructured carbon materials and provide an overview of the current understanding of the structure–property relationships related to the transport and adsorption of electrolyte ions on their surfaces, specific and volumetric capacitance, self‐discharge, cycle life, electrolyte stability, and others. We discuss the impact of microstructural defects, pore size distribution, pore tortuosity, chemistry and functional groups on the carbon surface, nanoscale curvature, and carbon‐electrolyte interfacial energy. Finally, we review state‐of‐the art commercial large scale applications of supercapacitors, including their use in smart grids and distributed energy storage, hybrid electric and electric vehicles, energy efficient industrial equipment, ships, wind power stations, uninterruptible power supplies, power backup, and consumer devices. WIREs Energy Environ 2014, 3:424–473. doi: 10.1002/wene.102 This article is categorized under: Fuel Cells and Hydrogen > Science and Materials Energy Infrastructure > Science and Materials Energy and Development > Science and Materials Energy Research & Innovation > Science and Materials
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