Qi Bingxin, Wang Chi, Liu Hanpei, Li Xiaoyue, Yan Wen, Lai Chao
School of Chemistry and Materials Science, Jiangsu Normal University, Xuzhou, Jiangsu, 221116, China.
Small Methods. 2025 Sep 4:e01229. doi: 10.1002/smtd.202501229.
Gel polymer electrolytes (GPEs) with solvent-in-polymer structure typically encounter a trade-off between ionic conductivity and mechanical properties. This challenge has not been adequately addressed by conventional single-material, miscible polymers, or polymer/ceramic composite electrolytes. Herein, the phase consistency of composite GPE matrix, which contains polymer blends of "soft" poly(vinylidene fluoride-co-hexafluoropropylene) (PVHF) and "hard" polyether-ether-ketone (PEEK), is enhanced by ion-mediated compatibilization through the incorporation of lithium sulfonate groups. In addition, the electrolyte's ionic environment is optimized by the pendent lithium sulfonate positioned at the interface between polymer-rich and solvent-rich domains, thus achieving high ionic conductivity of 1.87 mS cm at 20 °C and 1.28 mS cm at -20 °C via the matrix-assisted conduction. As a consequence, the composite gel electrolyte confers the Li||LiFePO battery with high discharge capacity of 157.0 mAh g at 1 C and capacity retention of 90.7% after 1500 cycles, and superior electrochemical performance under harsh conditions, including high rate of 5 C (96.0% capacity retention after 1000 cycles), extreme temperatures from -20 °C to 80 °C, and in conjunction with 30-µm lithium metal anode. This work advances the development of high-performance gel polymer electrolytes through innovative nanostructure and molecule design.
具有聚合物中溶剂结构的凝胶聚合物电解质(GPEs)通常在离子电导率和机械性能之间存在权衡。传统的单材料、可混溶聚合物或聚合物/陶瓷复合电解质尚未充分解决这一挑战。在此,通过引入磺酸锂基团进行离子介导的增容作用,增强了复合GPE基质的相一致性,该基质包含“软”聚(偏二氟乙烯-共-六氟丙烯)(PVHF)和“硬”聚醚醚酮(PEEK)的聚合物共混物。此外,通过位于富聚合物域和富溶剂域之间界面处的侧链磺酸锂优化了电解质的离子环境,从而通过基质辅助传导在20℃下实现了1.87 mS cm的高离子电导率,在-20℃下实现了1.28 mS cm的高离子电导率。因此,复合凝胶电解质赋予Li||LiFePO电池在1 C下157.0 mAh g的高放电容量以及1500次循环后90.7%的容量保持率,并且在包括5 C的高倍率(1000次循环后容量保持率96.0%)、-20℃至80℃的极端温度以及与30μm锂金属负极结合的苛刻条件下具有优异的电化学性能。这项工作通过创新的纳米结构和分子设计推动了高性能凝胶聚合物电解质的发展。