Zhao Fei, Zhang Jin-Hao, Chen Jin-Xiu, Gu Zhi-Yuan, Fan Xiao-Zhong, Zhu Lin, Na Hui-Ling, Dong Ming-Xia, Guan Cao, Kong Long
Institute of Flexible Electronics, Northwestern Polytechnical University, Xi'an 710129, China.
Air Defense and Antimissile School, Air Force Engineering University, Xi'an 710100, China.
Research (Wash D C). 2025 Aug 4;8:0802. doi: 10.34133/research.0802. eCollection 2025.
Fairly assessing energy barrier that shifts coordinated lithium (Li) to naked Li on the interface, as well as deeply exploring interfacial descriptors that can interpret rapid interfacial redox kinetics with anion-dominated electrolyte species, has been long-standing fundamentals to design well-performing electrolytes for low-temperature Li metal batteries. The Li de-solvation concept is merely a picture that can describe the transformation of coordinated Li to naked Li. This work highlights the importance of Li de-coordination instead of Li de-solvation to illustrate such Li transformation behavior, since it considers entire Li de-sheath events (both solvent and anion). Theoretical calculations inform that anions entering into the first Li solvation sheath (mimic to the weak solvation electrolyte) unavoidably elevate the Li de-coordination energy due to the intrinsically greater ion-ion than ion-dipole interactions in the bulk electrolyte. The subsequent interfacial model suggests that interfacial charge exchange is a more effective descriptor to mediate interfacial redox kinetics and interpret experimental results that anion-rich Li species exhibit better battery performances. This work underscores anion effects on the Li de-coordination in the bulk electrolyte and charge exchange in the interface, hoping to unveil the fundamental causes why anion-prevailed Li species work well in low-temperature Li metal batteries.
公正地评估界面上使配位锂(Li)转变为裸锂的能垒,以及深入探究能够解释以阴离子为主的电解质物种快速界面氧化还原动力学的界面描述符,长期以来一直是设计用于低温锂金属电池的高性能电解质的基本要点。锂去溶剂化概念仅仅是一幅能够描述配位锂向裸锂转变的图景。这项工作强调了锂去配位而非锂去溶剂化对说明这种锂转变行为的重要性,因为它考虑了整个锂去鞘层事件(包括溶剂和阴离子)。理论计算表明,由于本体电解质中离子 - 离子相互作用本质上比离子 - 偶极相互作用更强,进入第一锂溶剂化鞘层的阴离子(模拟弱溶剂化电解质)不可避免地会提高锂去配位能。随后的界面模型表明,界面电荷交换是介导界面氧化还原动力学并解释富含阴离子的锂物种表现出更好电池性能这一实验结果的更有效描述符。这项工作强调了阴离子对本体电解质中锂去配位和界面电荷交换的影响,希望揭示富含阴离子的锂物种在低温锂金属电池中表现良好的根本原因。