Duan Song, Zhang Lifen, Zheng Yun, Li Zhenghao, Liu Zewen, Liao Can, Wang Hongyao, Yan Wei, Zhang Jiujun
Institute of New Energy Materials and Engineering, College of Materials Science and Engineering, Fujian Engineering Research Center of High Energy Batteries and New Energy Equipment & Systems, Fuzhou University, Fuzhou, 350108, China.
Angew Chem Int Ed Engl. 2025 Aug 4;64(32):e202502728. doi: 10.1002/anie.202502728. Epub 2025 Jun 23.
Polyether electrolytes with high Li conductivity and excellent interfacial contact have garnered significant attention. Yet further applications of such electrolytes in high-voltage lithium metal batteries are severely hindered by the instability of the electrolyte and electrolyte/electrodes interphases. Here, we report a novel high-voltage polyether electrolyte with a "rigid exterior, soft interior" design, which involves a 3D F-contained network as a rigid exterior framework, and a unique solvation structure with intensified Li-anion coordination as a soft interior within the framework. The achieved electrolyte demonstrates an ionic conductivity of 1.13 mS cm at 25 °C, a Li transference number of 0.85, and an extended electrochemical stability window of over 5 V. Besides, such a designed polyether electrolyte further induces salt-philic, solvent-phobic interfacial films for stabilizing electrolyte/electrode interphases. An exceptional cyclability in a Li||Li cell for over 4000 h, and a preferable capacity and cyclability in even 4.6 V Li||LiNiCoMnO (NCM811) quasi-solid-state batteries (QSSBs) are demonstrated. Meanwhile, the resulting 4.3 V Li||LiNiCoMnO QSSB shows a Coulombic efficiency of ∼100% and an extremely high capacity retention of 95.4% after 600 cycles at 3C. A capacity retention of over 96.3% after 400 cycles at 1C are further realized in 4.5 V Li||NCM811 QSSB.
具有高锂离子电导率和优异界面接触性能的聚醚电解质已引起广泛关注。然而,这类电解质在高压锂金属电池中的进一步应用受到电解质及电解质/电极界面不稳定性的严重阻碍。在此,我们报道了一种采用“刚外柔内”设计的新型高压聚醚电解质,它包含一个含氟三维网络作为刚性外部框架,以及一种独特的溶剂化结构,其中强化的锂-阴离子配位作为框架内的柔性内部。所制备的电解质在25℃下的离子电导率为1.13 mS cm,锂离子迁移数为0.85,电化学稳定窗口超过5 V。此外,这种设计的聚醚电解质还能诱导亲盐、疏溶剂的界面膜,以稳定电解质/电极界面。在锂||锂电池中展现出超过4000小时的优异循环稳定性,并且在4.6 V锂||锂镍钴锰氧化物(NCM811)准固态电池(QSSB)中也具有良好的容量和循环稳定性。同时,所制备的4.3 V锂||锂镍钴锰氧化物QSSB在3C倍率下600次循环后库仑效率约为100%,容量保持率高达9