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Embedding antiperovskite nanophases into polymer hosts boosts ionic conductivity and interfacial compliance for all-solid-state lithium metal batteries
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Embedding antiperovskite nanophases into polymer hosts boosts ionic conductivity and interfacial compliance for all-solid-state lithium metal batteries

Bing-Ni Gu, Luc-Phuong-Nhu Tran, Zih-Siyuan Lin, Yo-Shun Chen, Shih-Ming Lin, Yu-Ting Chen, Yang-Hsin Shih, Yun-Shuo Chan, Shu-Chi Wu, Kai-Siang Jhang, …
Journal of materials chemistry. A, Materials for energy and sustainability, 卷.14(4), 頁碼.2303-2309
13/01/2026
Web of Science ID: WOS:001629884100001

摘要

Chemistry Chemistry, Physical Energy & Fuels Materials Science, Multidisciplinary Science & Technology Materials Science Physical Sciences Technology
All-solid-state batteries (ASSBs) have emerged as a safer and more energy-dense alternative to conventional liquid-electrolyte batteries. In this study, a composite solid electrolyte (CSE) was developed by incorporating Li3OCl (lithium-rich antiperovskite, LiRAP) into a poly(ethylene oxide)-LiTFSI matrix to address the limitation of single-phase solid electrolytes. The Li3OCl was selected for its good ionic conductivity, simple ball-milling synthesis, and ability to enhance Li-ion transport in the polymer matrix. The resulting CSE exhibits reduced interfacial resistance and enhanced ionic conductivity at room temperature, enabling stable cycling performance. Li stripping/plating tests confirm its compatibility with lithium metal, showing stable cycling without short circuits over 100 cycles. In addition, the Li//LFP cell using this CSE maintains 86.2% of its initial capacity after 100 cycles at 25 degrees C. The work highlights the synergistic benefits of combining LiRAP with PEO, providing a practical route toward improved all-solid-state lithium batteries.

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