衍射
材料科学
扩散
阴极
电解质
化学物理
锂(药物)
同步加速器
热传导
纳米尺度
复合数
快离子导体
电池(电)
同步辐射
电化学
X射线晶体学
锂电池
纳米颗粒
阳极
电极
分析化学(期刊)
跟踪(教育)
结晶学
原子扩散
布拉格定律
动力学
反常扩散
动力学(音乐)
瞬态(计算机编程)
扩散层
作者
Po‐Jui Chu,Jheng‐Yi Huang,Yu‐Shuo Liu,Yun‐Ping Chang,Yuan‐Ting Hung,Ching‐Yu Chiang,Yu‐Cheng Shao,Wan‐Zhen Hsieh,Hirofumi Ishii,R. S. LIU
标识
DOI:10.1002/anie.202520281
摘要
Li+ diffusion has mostly been studied in cathode active materials (CAMs) in liquid batteries, whereas it remains rarely explored in solid-state electrolytes (SSEs) and all-solid-state batteries. Herein, diffraction was established as an effective method for all-solid-state lithium batteries (ASSLBs) by focusing on SSE in composite cathodes. Operando synchrotron x-ray diffraction presented diffraction angle shifts of certain Li3InCl6 Bragg planes during the first ASSLB cycle due to lithiation/delithiation into its lattice, whose preferred Li+ migration pathways were suggested by the partiality of these shifts, and the three-phase evolution indicated the fundamental Li+ diffusion kinetics factors. X-ray nanodiffraction (XND) mapped nanoscale inhomogeneous Li+ distributions and diffusion within individual Li3InCl6 particles, revealing facilitated Li+ conduction in high-crystallinity regions and their role as pathways across SSE/CAM interfaces, and the most negatively strained regions were shown to be less susceptible to Li+ insertion. XND from various electrochemical techniques inferred high transient charging rates to be the culprit of irreversible Li+ diffusion instead of the overall charging depth. This study proved diffraction to be a potent tool to probe intricate Li+ dynamics in ASSLBs and provide microscopic insights for optimal battery designs.
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