Melethil Krishnakumar, Kumar Munusamy Sathish, Wu Chun-Ming, Shen Hsin-Hui, Vedhanarayanan Balaraman, Lin Tsung-Wu
Department of Chemistry, Tunghai University, No.1727, Sec.4, Taiwan Boulevard, Xitun District, Taichung City 40704, Taiwan.
National Synchrotron Radiation Research Center, Hsinchu 30076, Taiwan.
Nanomaterials (Basel). 2023 Apr 2;13(7):1257. doi: 10.3390/nano13071257.
Supercapacitors are candidates with the greatest potential for use in sustainable energy resources. Extensive research is being carried out to improve the performances of state-of-art supercapacitors to meet our increased energy demands because of huge technological innovations in various fields. The development of high-performing materials for supercapacitor components such as electrodes, electrolytes, current collectors, and separators is inevitable. To boost research in materials design and production toward supercapacitors, the up-to-date collection of recent advancements is necessary for the benefit of active researchers. This review summarizes the most recent developments of water-in-salt (WIS) and deep eutectic solvents (DES), which are considered significant electrolyte systems to advance the energy density of supercapacitors, with a focus on two-dimensional layered nanomaterials. It provides a comprehensive survey of 2D materials (graphene, MXenes, and transition-metal oxides/dichalcogenides/sulfides) employed in supercapacitors using WIS/DES electrolytes. The synthesis and characterization of various 2D materials along with their electrochemical performances in WIS and DES electrolyte systems are described. In addition, the challenges and opportunities for the next-generation supercapacitor devices are summarily discussed.
超级电容器是可持续能源领域中最具应用潜力的候选者。由于各领域的巨大技术创新,为满足不断增长的能源需求,人们正在对现有超级电容器的性能进行广泛研究。开发用于超级电容器组件(如电极、电解质、集流体和隔膜)的高性能材料势在必行。为推动超级电容器材料设计与生产方面的研究,为活跃的研究人员提供最新进展的汇总很有必要。本综述总结了盐包水(WIS)和深共熔溶剂(DES)的最新进展,它们被认为是提高超级电容器能量密度的重要电解质体系,重点关注二维层状纳米材料。它全面概述了使用WIS/DES电解质的超级电容器中所采用的二维材料(石墨烯、MXenes以及过渡金属氧化物/二硫属化物/硫化物)。描述了各种二维材料的合成与表征及其在WIS和DES电解质体系中的电化学性能。此外,还简要讨论了下一代超级电容器器件面临的挑战与机遇。