Zhou Qingjie, He Mengxue, Gao Shuyang, Hou Wangshu, Ma Yulin, Huo Hua, Du Chunyu, Yin Geping, Zuo Pengjian
College of Chemistry and Molecular Sciences, Henan University, Kaifeng, 475004, China.
State Key Laboratory of Space Power-Sources, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, No.92 West-Da Zhi Street, Harbin, 150001, China.
Adv Sci (Weinh). 2025 May;12(18):e2417169. doi: 10.1002/advs.202417169. Epub 2025 Apr 9.
Gel polymer electrolyte (GPE) has garnered widespread attention in the field of lithium batteries because of its low interfacial impedance, high thermal stability, and flexibility. However, the high-voltage compatibility and Li transport kinetics of GPE have yet to meet the requirements of future high-energy secondary battery systems. In this regard, a comprehensive and insightful review of high-voltage lithium batteries with GPE has attracted significant attention, focusing on molecular design and intermolecular interactions. Molecular regulation involves customizing the polymer matrix, solvent, additive, and Li salt, while intermolecular interactions encompass hydrogen bond interactions, Lewis acid-base interactions, electrostatic interactions, and π-π stacking interactions. Besides, strategies to enhance the stability of the cathode electrolyte interphase and Li transport kinetics are summarized. It is hoped that this review will provide a deeper understanding of the direct regulation of GPE at the molecular level, further accelerating the commercialization of GPE in high-energy secondary lithium batteries.
凝胶聚合物电解质(GPE)因其低界面阻抗、高热稳定性和柔韧性,在锂电池领域受到广泛关注。然而,GPE的高电压兼容性和锂传输动力学尚未满足未来高能二次电池系统的要求。在这方面,一篇对含GPE的高压锂电池进行全面且有深刻见解的综述引起了广泛关注,其重点在于分子设计和分子间相互作用。分子调控涉及定制聚合物基体、溶剂、添加剂和锂盐,而分子间相互作用包括氢键相互作用、Lewis酸碱相互作用、静电相互作用和π-π堆积相互作用。此外,还总结了增强正极电解质界面稳定性和锂传输动力学的策略。希望这篇综述能让人在分子层面更深入地理解对GPE的直接调控,进一步加速GPE在高能二次锂电池中的商业化进程。