用天然资源中更安全的电解质和碳电极构建超级电容器

Mohammad Said El Halimi, A. Zanelli, F. Soavi, Tarik Chafik
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引用次数: 1

摘要

人们对储能装置(包括电池和电容器)日益增长的兴趣,可能会导致电化学性能的改善,如延长充放电周期、高比电容和功率密度。此外,由于与当前高性能电容器技术相关的资源至关重要,使用易于获得的原材料生产碳电极引起了人们的兴趣。本文综述了用于超级电容器的碳基材料,这些材料来源于价格合理的煤层或农作物废料,在比表面积、电导率和充放电稳定性方面具有适当的特性。此外,用危险性较低的溶液替代有机液体电解质,如含高浓度盐的水溶液电解质,是设计绿色器件的一种有价值的策略。最后,本文综述了基于碳电极的超级电容器的电化学性能及其与更安全、更便宜的电解质的相容性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Building towards Supercapacitors with Safer Electrolytes and Carbon Electrodes from Natural Resources
The growing interest in energy storage devices, both batteries and capacitors, could lead to the improvement of electrochemical properties such as extended charge/discharge cycles, high specific capacitance, and power density. Furthermore, the use of easily available raw materials for the production of carbon electrodes has attracted interest due to the criticality of the resources related to the current technologies of high-performance capacitors. The present article reviews carbon-based materials for supercapacitors derived from affordable coal deposits or crop waste with appropriate characteristics in terms of specific surface area, electrical conductivity, and charge/discharge stability. In addition, the substitution of organic liquids electrolytes with less dangerous solutions, such as aqueous electrolytes containing high concentrations of salt, is a valuable strategy for the design of green devices that is discussed in this review. Finally, the present article reviews the electrochemical performance of supercapacitors based on carbon electrodes obtained from various natural resources and their compatibility with safer and cheaper electrolytes.
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