Rajput Nav Nidhi, Seguin Trevor J, Wood Brandon M, Qu Xiaohui, Persson Kristin A
Lawrence Berkeley National Laboratory, Berkeley, CA, 94720, USA.
Joint Center for Energy Storage Research (JCESR), Chicago, USA.
Top Curr Chem (Cham). 2018 Apr 26;376(3):19. doi: 10.1007/s41061-018-0195-2.
Fundamental molecular-level understanding of functional properties of liquid solutions provides an important basis for designing optimized electrolytes for numerous applications. In particular, exhaustive knowledge of solvation structure, stability, and transport properties is critical for developing stable electrolytes for fast-charging and high-energy-density next-generation energy storage systems. Accordingly, there is growing interest in the rational design of electrolytes for beyond lithium-ion systems by tuning the molecular-level interactions of solvate species present in the electrolytes. Here we present a review of the solvation structure of multivalent electrolytes and its impact on the electrochemical performance of these batteries. A direct correlation between solvate species present in the solution and macroscopic properties of electrolytes is sparse for multivalent electrolytes and contradictory results have been reported in the literature. This review aims to illustrate the current understanding, compare results, and highlight future needs and directions to enable the deep understanding needed for the rational design of improved multivalent electrolytes.
对液体溶液功能特性的基本分子层面理解为设计适用于众多应用的优化电解质提供了重要基础。特别是,详尽了解溶剂化结构、稳定性和传输特性对于开发用于快速充电和高能量密度下一代储能系统的稳定电解质至关重要。因此,通过调节电解质中溶剂化物种的分子层面相互作用来合理设计超越锂离子系统的电解质的兴趣与日俱增。在此,我们综述了多价电解质的溶剂化结构及其对这些电池电化学性能的影响。对于多价电解质,溶液中存在的溶剂化物种与电解质宏观性质之间的直接关联较为稀少,且文献中报道了相互矛盾的结果。本综述旨在阐明当前的理解、比较结果,并突出未来的需求和方向,以实现合理设计改进型多价电解质所需的深入理解。