材料科学
电解质
离子电导率
电导率
惰性
化学工程
离子键合
聚合物
硫化物
动力学
纳米技术
热传导
透射电子显微镜
快离子导体
电极
扫描透射电子显微镜
相(物质)
箔法
储能
离子液体
离子运输机
输运现象
电阻率和电导率
阴极
离子
电流密度
作者
Defu Cao,Chao Wang,Weiping Li,Yang Li,Yang Li,Jiacheng Zhu,Hong Liu,Zhaoxiang Wang,Yejing Li,Yejing Li,Hao Zhang,Xuefeng Wang,Ce‐Wen Nan,Li‐Zhen Fan
摘要
ABSTRACT The development of ultrathin, high ionic conductivity sulfide solid‐state electrolytes (SSEs) film is essential for achieving high‐energy‐density all‐solid‐state batteries (ASSBs). However, conventional chemically inert binders inevitably impede Li‐ion transport kinetics within SSE films, and the underlying Li‐ion transport mechanisms remain elusive. In this work, we report an Li‐ion‐conductive polymer binder (LiTFSI‐PMEMA) and integrate it with SSEs via dry processing to fabricate an ultrathin SSE film (USF). The resulting USF is only 18 µm thick and exhibits a high ionic conductivity of 1.56 mS cm ‒1 . By combining cryogenic transmission electron microscopy (cryo‐TEM), solid‐state nuclear magnetic resonance (ssNMR), and theoretical simulations, we propose an Li + transport model in which the SSE phase provides the dominant conduction pathway, while the polymer binder and SSEs/polymer contact regions can assist local Li + transport continuity between neighboring SSE particles. When implemented in ASSBs, the USF exhibits exceptional interfacial compatibility and kinetic stability, enabling a long‐term cycling life with 70.3% capacity retention over 1500 cycles. Furthermore, a LiNi 0.7 Co 0.2 Mn 0.1 O 2 ||USF||nSi pouch cell delivers a high stack‐level energy density of 322.7 Wh kg ‒1 . This work provides crucial insights into the multiphase Li‐ion transport kinetics and demonstrates a scalable manufacturing strategy for sulfide‐based ASSBs.
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