Pan Shanshan, Yao Meng, Zhang Jiahe, Li Bosen, Xing Chunxian, Song Xianli, Su Peipei, Zhang Haitao
Beijing Key Laboratory of Ionic Liquids Clean Process, CAS Key Laboratory of Green Process and Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing, China.
School of Chemical Engineering, University of Chinese Academy of Science, Beijing, China.
Front Chem. 2020 May 5;8:261. doi: 10.3389/fchem.2020.00261. eCollection 2020.
The electrochemical stability of electrolytes is essential to the working potential of supercapacitors. Ionic liquids (ILs) are being considered as safe alternatives to current organic electrolytes and attracting extensive interests owing to their inflammability, widened potential windows, and superior ionic conductivity. Novel supercapacitors with IL electrolytes exhibit attractive energy density and can be utilized in various energy storage systems. Most previous studies focused on electrochemical performances, while rare attentions were devoted to energy storage process details or mechanisms. This review comprehensively summarizes the latest progress on formulated IL electrolytes for different types of supercapacitors, with an emphasis on the intrinsic understanding of the related energy storage mechanisms. Subsequently, comparisons of various IL-based liquid-state electrolytes as well as the state-of-the-art advancements in optimizing ILs electrolytes are introduced. The authors attempt to reveal the inherent correlation between the usage of IL electrolytes and the properties of supercapacitors via referenced works. Some emerging applications of ionogel electrolytes based on conventional polymers and poly(IL)s for flexible supercapacitors are also presented, including the existing problems. In addition, challenges and future perspectives of research in this field are highlighted.
电解质的电化学稳定性对于超级电容器的工作电位至关重要。离子液体(ILs)正被视为当前有机电解质的安全替代品,并因其不可燃性、更宽的电位窗口和优异的离子导电性而吸引了广泛关注。具有IL电解质的新型超级电容器展现出有吸引力的能量密度,可用于各种能量存储系统。此前大多数研究集中在电化学性能上,而对能量存储过程细节或机制的关注较少。本综述全面总结了用于不同类型超级电容器的定制IL电解质的最新进展,重点在于对相关能量存储机制的内在理解。随后,介绍了各种基于IL的液态电解质的比较以及优化ILs电解质方面的最新进展。作者试图通过参考文献揭示使用IL电解质与超级电容器性能之间的内在关联。还介绍了基于传统聚合物和聚离子液体(poly(IL)s)的离子凝胶电解质在柔性超级电容器中的一些新兴应用,包括现存问题。此外,突出了该领域研究的挑战和未来展望。