电解质
化学
离子电导率
电化学
快离子导体
卤化物
离子键合
电导率
导电体
成形性
化学工程
化学稳定性
无机化学
储能
电极
离子
电阻率和电导率
电化学窗口
作者
Shufan Jia,Yu‐Jie Guo,Xiaodong Qi,Liang Ma,Xusheng Zhang,Wanli Wang,Lin‐Bo Huang,Manyi Xie,J. Wang,Haizhou Liu,Rui Wen,Yu‐Guo Guo
摘要
Designing halide solid electrolytes with high ionic conductivity and robust electrochemical stability is crucial for advanced all-solid-state sodium-ion batteries. Currently, most sodium-based halide conductors suffer from the limited ionic conductivity. In this work, we report a new fast-ion-conductive sulfide-chloride solid electrolyte Na1.0Zr0.5Al0.5Cl3.5S0.5 (NZACS), where highly conductive prismatic Na-ion coordination units were developed by Al3+/S2--triggered glass-ceramic evolution of the P21/n phase. The resulting material exhibits a high ionic conductivity of 3.2 × 10-4 S cm-1 at room temperature and 1.0 × 10-3 S cm-1 at 60 °C, and a low activation energy of 0.35 eV. Moreover, the excellent formability and high electrochemical oxidative stability of the NZACS solid electrolyte ensure a tight junction between the electrolyte-electrode interface, thus delivering superior cycling stability and rate capability, 93% capacity retention after 150 cycles at 0.1C and 80% capacity retention after 800 cycles at 1C. This study establishes a new paradigm of precise local-structure engineering for the development of high-performance solid electrolytes.
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