卤化物
材料科学
电解质
超分子化学
阳极
化学工程
电化学
制作
离子电导率
离子键合
卤化银
溴化物
纳米技术
纳米结构
离子液体
超分子组装
高分子化学
涂层
电化学电池
共聚物
阴极
癸烷
金属卤化物
离解(化学)
甲基环己烷
纳米复合材料
三氟甲磺酸
双层
薄膜
无机化学
作者
Shutao Zhang,Jiamin Fu,Guantai Hu,Suzhe Liang,Y. Zheng,Chao Wang,Shengjie Xia,Pushun Lu,Jiaxu Zhang,Mingying Zhang,Mingfeng Wei,J Hong,Ziqing Wang,Zhou Zh,Jian Peng,Le Chen,Xueliang Sun,Changhong Wang
摘要
ABSTRACT Halide solid electrolytes (SSEs) hold promise for next‐generation all‐solid‐state batteries (ASSBs), yet scalable fabrication of halide SSE films and ampere‐hour‐scale all‐solid‐state pouch cells (ASSPCs) via slurry coating has not been demonstrated. Here, we introduce a dual‐solvent supramolecular assembly strategy that precisely regulates the chain organization of a multiblock copolymer binder (SEEPS), enabling low‐binder, high‐viscosity slurries for uniform halide SSE film formation. Methylcyclohexane and decane are identified as chemically compatible solvents that diminish InCl 3 surface precipitation in Li 3 InCl 6 , preserving ionic conductivity. The resulting Li 3 InCl 6 /Li 6− x PS 5− x Cl 1+ x bilayer SSE film exhibits high ionic conductivity (1.26 mS/cm), mechanical robustness, and electrochemical stability. ASSBs using NCM88 cathodes and micro‐silicon anodes retain 71.3% capacity after 600 cycles at 0.5 C, while the first ten‐layer ampere‐hour‐scale halide ASSPC delivers 1.45 Ah at 0.2 C with 95.1% capacity retention over 100 cycles. This approach establishes a practical and scalable pathway for fabricating halide ASSPCs, bridging laboratory innovations and commercial deployment.
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