Jia S; Guo YJ; Qi X; Ma L; Zhang XS; Wang W; Huang LB; Xie M; Wang J; Liu H; Wen R; Guo YG · 2026 · Journal of the American Chemical Society
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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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