Enhanced functional properties of porous carbon materials as high-performance electrode materials for supercapacitors

Kai Yang , Qingwen Fan , Chaoyun Song , Yuchun Zhang , Yongmei Sun , Wen Jiang , Peng Fu
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引用次数: 1

Abstract

Porous carbons with unique electronic, chemical, and surface properties have become a research hotspot in energy storage applications. But the electrodes of porous carbons in supercapacitors cannot meet the ever-inrceasing demands for high energy density for electronic devices. Heteroatom, metal oxide and conductive polymer can provide pseudo-capacitance for porous carbon materials during charging and discharging to improve energy density. Therefore, it is of great interest to develop modified porous carbon composites as electrode materials for supercapacitors. In this review, after a brief introduction for electrochemcial capacitors, we summarize the advances in the recent years, in the preparation and properties of porous carbons for applications in supercapacitors. The advantages and disadvantages of activated carbon, template carbon, carbon nanotubes (CNTs) and graphene are analyzed. Different ways of modification have their own effects on the development of high-performance supercapacitors. Finally, the challenges in the modified porous carbon composites and its future perspectives are highlighted to provide a key insight to the promising factors for future developments of supercapacitor electrodes.

Abstract Image

多孔碳材料作为超级电容器高性能电极材料的增强功能特性
多孔碳具有独特的电子、化学和表面性质,已成为储能应用的研究热点。但是超级电容器中的多孔碳电极无法满足电子设备对高能量密度的不断增长的需求。杂原子、金属氧化物和导电聚合物可以在充放电过程中为多孔碳材料提供伪电容,以提高能量密度。因此,开发改性多孔碳复合材料作为超级电容器的电极材料具有重要意义。在这篇综述中,在简要介绍了电化学电容器之后,我们总结了近年来在超级电容器中应用的多孔碳的制备和性能方面的进展。分析了活性炭、模板炭、碳纳米管和石墨烯的优缺点。不同的改性方式对高性能超级电容器的发展有着各自的影响。最后,强调了改性多孔碳复合材料的挑战及其未来前景,为超级电容器电极的未来发展提供了关键的见解。
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