石墨烯与聚苯胺复合超级电容器电极的发展趋势

S. Santoso, Harry Kasuma (Kiwi) Aliwarga, Livy Laysandra, Artik Elisa Angkawijaya, Felycia Edi Soetaredjo, Jindrayani Nyoo Putro, Maria Yuliana, Felix Pasila, Kuan-Chen Cheng, Hsien-Yi Hsu, Suryadi Ismadj
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引用次数: 3

摘要

对高效能源器件的高需求促使具有长寿命周期、高循环稳定性、高功率密度等优异电化学性能的储能系统迅速发展。SC被假定为满足这一需求的潜在候选者。石墨烯和聚苯胺的结合可以制造出具有优异导电性、高比表面积和高电容的SC电极。石墨烯/聚苯胺杂化电极是克服石墨烯或聚苯胺非杂化(单)电极材料主要缺点的一种有吸引力的方法。本文综述了各种石墨烯/聚苯胺杂化电极的发展趋势,包括零维石墨烯-量子点/聚苯胺杂化电极、一维石墨烯/聚苯胺杂化电极、二维石墨烯/聚苯胺杂化电极和三维水凝胶型石墨烯/聚苯胺杂化电极。本文讨论了几种提高石墨烯/聚苯胺杂化电极电容值和循环稳定性的策略和方法,如添加过渡金属氧化物和金属有机框架,以及将石墨烯改性为功能化石墨烯。还讨论了石墨烯与其他导电聚合物(即聚吡咯、聚噻吩和聚噻吩衍生物)结合制备的电极的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Trends on the Development of Hybrid Supercapacitor Electrodes from the Combination of Graphene and Polyaniline
The high demand for efficient energy devices leads to the rapid development of energy storage systems with excellent electrochemical properties, such as long life cycles, high cycling stability, and high power density. SC is postulated as a potential candidate to fulfill this demand. The combination of graphene and polyaniline can create SC electrodes with excellent electrical conductivity, high specific surface area, and high capacitance. The graphene/polyaniline hybrid electrodes represent an attractive means to overcome the major drawbacks of graphene or polyaniline non-hybrid (single) electrode materials. In this review article, the trend in the development of various graphene/polyaniline hybrid electrodes is summarized, which includes the zero-dimension graphene-quantum-dots/polyaniline hybrid, one-dimension graphene/polyaniline hybrid, two-dimension graphene/polyaniline hybrid, and three-dimension hydrogel-shaped graphene/polyaniline hybrid. Several strategies and approaches to enhance the capacitance value and cycling stability of graphene/polyaniline hybrid electrodes are discussed in this review article, such as the addition of transition metal oxides and metal-organic frameworks, and modification of graphene into functionalized-graphene. The performance of the electrodes prepared from the combination of graphene with other conducting polymers (i.e., polypyrrole, polythiophene, and polythiophene-derivatives) is also discussed.    
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