电解质
离子电导率
材料科学
介电谱
离子键合
储能
电化学
化学工程
电导率
电化学窗口
快离子导体
红外光谱学
光谱学
拉曼光谱
离子
差示扫描量热法
纳米技术
聚合物
电化学储能
傅里叶变换红外光谱
聚合物电解质
锂(药物)
离子强度
准固态
分子工程
作者
Md Shovon Hossain,Jesse Z. Estrada‐Jauregui,Caiwei Shen
标识
DOI:10.1002/batt.202500647
摘要
Multifunctional electrolytes with efficient ionic transport and mechanical load‐bearing are crucial for next‐generation structural energy storage systems. However, existing structural electrolytes face an intrinsic trade‐off between ionic conductivity and mechanical integrity. This study introduces an entropy‐driven solid polymer electrolyte (SPE) design that simultaneously improves ionic transport and mechanical performance. By blending polylactic acid (PLA) and polymethyl methacrylate (PMMA) at distinct molecular weights with lithium bis(trifluoromethanesulfonyl)imide (LiTFSI), we leverage molecular‐weight‐mediated configurational entropy to tune SPE performance. Characterizations including differential scanning calorimetry, X‐ray diffraction, and Fourier‐transform infrared spectroscopy confirm miscible, interpenetrating networks with pervasive Li + ‐carbonyl coordination and high‐entropy states. Electrochemical impedance spectroscopy demonstrates all dual‐polymer electrolytes outperform single‐polymer counterparts in ionic conductivity. Notably, a high‐entropy formulation achieves ionic conductivity three orders of magnitude higher and activation energy 50%–65% lower than single‐polymer versions. Mechanically, while single‐polymer electrolytes occupy opposite ends of the toughness‐stiffness spectrum, dual‐polymer electrolytes overcome this by combining both attributes for a balanced response. One formulation attains a synergistic balance, delivering high stiffness (≈0.58 GPa) while preserving substantial toughness. These results illustrate that entropy‐driven tuning navigates the conductivity‐mechanics trade‐off, engineering SPEs with balanced properties for structural energy storage applications.
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