Marinow Anja, Katcharava Zviadi, Binder Wolfgang H
Macromolecular Chemistry, Institute of Chemistry, Faculty of Natural Science II, Martin Luther University Halle-Wittenberg, Von-Danckelmann-Platz 4, 06120 Halle (Saale), Germany.
Polymers (Basel). 2023 Feb 24;15(5):1145. doi: 10.3390/polym15051145.
The integration of polymer materials with self-healing features into advanced lithium batteries is a promising and attractive approach to mitigate degradation and, thus, improve the performance and reliability of batteries. Polymeric materials with an ability to autonomously repair themselves after damage may compensate for the mechanical rupture of an electrolyte, prevent the cracking and pulverization of electrodes or stabilize a solid electrolyte interface (SEI), thus prolonging the cycling lifetime of a battery while simultaneously tackling financial and safety issues. This paper comprehensively reviews various categories of self-healing polymer materials for application as electrolytes and adaptive coatings for electrodes in lithium-ion (LIBs) and lithium metal batteries (LMBs). We discuss the opportunities and current challenges in the development of self-healable polymeric materials for lithium batteries in terms of their synthesis, characterization and underlying self-healing mechanism, as well as performance, validation and optimization.
将具有自修复特性的聚合物材料集成到先进的锂电池中,是一种很有前景且颇具吸引力的方法,可减轻电池性能退化,从而提高电池的性能和可靠性。具有受损后能自动修复自身能力的聚合物材料,可弥补电解质的机械破裂,防止电极开裂和粉化,或稳定固体电解质界面(SEI),从而延长电池的循环寿命,同时解决经济和安全问题。本文全面综述了各类用于锂离子电池(LIBs)和锂金属电池(LMBs)电解质及电极自适应涂层的自修复聚合物材料。我们从合成、表征及潜在的自修复机制,以及性能、验证和优化等方面,讨论了用于锂电池的可自愈聚合物材料开发中的机遇和当前面临的挑战。