Synergistic effects of chlorine substitution in sulfide electrolyte solid state batteries

离子电导率 快离子导体 电解质 阳极 电导率 硫化物 无机化学 电化学窗口 离子键合 电池(电) 材料科学 化学 化学工程 电极 离子 冶金 热力学 物理化学 有机化学 功率(物理) 工程类 物理
作者
Eva Gil‐González,Luhan Ye,Yichao Wang,Zulipiya Shadike,Zhenming Xu,Enyuan Hu,Xin Li
出处
期刊:Energy Storage Materials [Elsevier BV]
卷期号:45: 484-493 被引量:70
标识
DOI:10.1016/j.ensm.2021.12.008
摘要

All-solid-state battery is considered as one of the most promising competitors to Li ion batteries. Two widely known performance metrics for solid electrolytes, among others, are ionic conductivity and stability. Here it is found that both can be improved by the synergistic effects of chlorine substitution in sulfide-based solid electrolytes. Particularly, instabilities arising from both bulk decompositions and interfacial reactions to electrodes can be better inhibited in the chlorine substituted sulfide solid electrolytes through the increased susceptibility to the mechanical constriction induced enhancement of voltage stability. As a result, the stability window of some chlorine-rich Li-argyrodites can be systematically higher than some other chlorine-deficient or chlorine-free electrolytes, especially under the implementation of the mechanical constriction battery assembly and test conditions. Thus, a solid-state battery system of 4 V to 5 V-class cathodes paired with lithium metal anode is demonstrated using these chlorine-rich Li-argyrodites without additional coatings. Furthermore, since Cl composition modulates the stability and instability of Li-argyrodite at low voltages, it allows us to design a multilayer configuration with a hierarchy of Li metal stabilities to demonstrate the stable cycling at relatively high current densities for solid-state batteries. It is found that a moderate Cl composition in the electrolyte is the best to inhibit Li dendrite penetration as the central electrolyte layer, emphasizing a slightly increased “instability” as the hidden performance metric of relevance here, in addition to the two well-known metrics of stability and ionic conductivity. The understanding of the chlorine substitution effect in sulfide electrolytes provides an important design principle for all-solid-state batteries.
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