材料科学
电解质
离子电导率
化学工程
降级(电信)
聚合物
阴极
聚合物电解质
电导率
基质(化学分析)
溶剂化
离子键合
离子液体
电池(电)
离子强度
离子
作者
Xinyuan Shan,Yue Li,Chang Sun,Hang Ding,Sijin Jin,Haibo Sun,Weixing Min,Ming Tian,Peng‐Fei Cao
标识
DOI:10.1002/adfm.202528445
摘要
ABSTRACT Recently developed high‐entropy gel‐polymer electrolytes (GPEs), which are mainly constructed by diversifying the components of liquid electrolytes (LEs), are attractive to achieve safe and stable lithium‐metal batteries while posing persistent challenges in low‐temperature operation. Herein, we develop a high‐entropy GPE via the incorporation of a high‐entropy single‐ion conducting polymer (HESIP) matrix that has a synergistic effect with low‐temperature operable LE (LOLE) for efficient ionic transport and a stable interface. The multi‐functional HESIP matrix can modulate the Li + solvation structure by competitive coordination, achieving high ionic conductivity (5.33 mS cm −1 @ 25 °C) and cation transport number (0.77) of high‐entropy GPE. It further demonstrates reduced degradation of the NCM811 cathode with suppressed HF release and mitigated side reactions at the electrode‐electrolyte interphase. The high‐entropy GPE enables stable cycling performance of NCM811 (1.2 mAh cm −2 , active materials >97 %)//Li cell at both ambient temperature (25 °C, capacity retention 79.5 % over 400 cycles) and low temperature (−25 °C, capacity retention 99.9 % over 500 cycles). Such high‐entropy GPE provides new insights into the future application prospects for safe and high‐performance all‐weather operable batteries.
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