Zhang Hangyu, Xu Xijun, Fan Weizhen, Zhao Jingwei, Huo Yanping
Guangdong Provincial Laboratory of Chemistry and Fine Chemical Engineering, Jieyang Center, Jieyang, 515200, China.
School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou, 510006, PR China.
Chemistry. 2024 Dec 23;30(72):e202402798. doi: 10.1002/chem.202402798. Epub 2024 Nov 7.
In pursuit of high energy density, lithium metal batteries (LMBs) are undoubtedly the best choice. However, leakage and inevitable dendrite growth in liquid electrolytes seriously hinder its practical application. Solid/quasi-solid state electrolytes have emerged as an answer to solve the above issues. Especially, polymer electrolytes with excellent interface compatibility, high flexibility, and ease of machining have become a research hotspot for LMBs. Nevertheless, the interface contact between polymer electrolyte and inorganic electrode materials and the low ionic conductivity restrict its development. On account of these, in situ polymerized polymer electrolyte is proposed. Polymer solid electrolytes produced through in situ polymerization promote robust interface contact between the electrolyte and electrode while simplifying the preparation steps. This review summarized the latest research progress in in situ polymerized solid electrolytes for LMBs. These electrolytes were divided into three parts according to their polymerization methods: thermally induced polymerization, chemical initiator polymerization, ionizing radiation polymerization, and so on. Furthermore, we concluded the major challenges and future trends of in situ polymerized solid electrolytes for LMBs. It's hoped that this review will provide meaningful guidance on designing high-performance polymer solid electrolytes for LMBs.
在追求高能量密度方面,锂金属电池无疑是最佳选择。然而,液体电解质中的泄漏和不可避免的枝晶生长严重阻碍了其实际应用。固态/准固态电解质已成为解决上述问题的答案。特别是,具有优异界面相容性、高柔韧性和易于加工的聚合物电解质已成为锂金属电池的研究热点。然而,聚合物电解质与无机电极材料之间的界面接触以及低离子电导率限制了其发展。鉴于此,提出了原位聚合聚合物电解质。通过原位聚合制备的聚合物固体电解质促进了电解质与电极之间的牢固界面接触,同时简化了制备步骤。本文综述了锂金属电池原位聚合固体电解质的最新研究进展。这些电解质根据其聚合方法分为热引发聚合、化学引发剂聚合、电离辐射聚合等三个部分。此外,我们总结了锂金属电池原位聚合固体电解质的主要挑战和未来趋势。希望这篇综述能为设计高性能锂金属电池聚合物固体电解质提供有意义的指导。