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锂金属电池中先进功能隔膜的最新进展

Recent Progress of Advanced Functional Separators in Lithium Metal Batteries.

作者信息

Seo Junhyeok, Im Juyeon, Kim Minjae, Song Dahee, Yoon Sukeun, Cho Kuk Young

机构信息

Department of Materials Science and Chemical Engineering, Hanyang University, Ansan, Gyeonggi, 15588, Republic of Korea.

Division of Advanced Materials Engineering, Kongju National University, Cheonan, Chungnam, 31080, Republic of Korea.

出版信息

Small. 2024 Aug;20(33):e2312132. doi: 10.1002/smll.202312132. Epub 2024 Mar 7.

Abstract

As a representative in the post-lithium-ion batteries (LIBs) landscape, lithium metal batteries (LMBs) exhibit high-energy densities but suffer from low coulombic efficiencies and short cycling lifetimes due to dendrite formation and complex side reactions. Separator modification holds the most promise in overcoming these challenges because it utilizes the original elements of LMBs. In this review, separators designed to address critical issues in LMBs that are fatal to their destiny according to the target electrodes are focused on. On the lithium anode side, functional separators reduce dendrite propagation with a conductive lithiophilic layer and a uniform Li-ion channel or form a stable solid electrolyte interphase layer through the continuous release of active agents. The classification of functional separators solving the degradation stemming from the cathodes, which has often been overlooked, is summarized. Structural deterioration and the resulting leakage from cathode materials are suppressed by acidic impurity scavenging, transition metal ion capture, and polysulfide shuttle effect inhibition from functional separators. Furthermore, flame-retardant separators for preventing LMB safety issues and multifunctional separators are discussed. Further expansion of functional separators can be effectively utilized in other types of batteries, indicating that intensive and extensive research on functional separators is expected to continue in LIBs.

摘要

作为锂离子电池(LIBs)之后的代表性电池,锂金属电池(LMBs)具有高能量密度,但由于枝晶形成和复杂的副反应,其库仑效率较低且循环寿命较短。隔膜改性在克服这些挑战方面最具前景,因为它利用了LMBs的原始元素。在这篇综述中,重点关注了根据目标电极设计的、旨在解决对LMBs命运至关重要的关键问题的隔膜。在锂负极一侧,功能性隔膜通过导电亲锂层和均匀的锂离子通道减少枝晶生长,或通过活性剂的持续释放形成稳定的固体电解质界面层。总结了用于解决常常被忽视的源自正极的降解问题的功能性隔膜的分类。功能性隔膜通过清除酸性杂质、捕获过渡金属离子和抑制多硫化物穿梭效应,抑制了正极材料的结构劣化及其导致的泄漏。此外,还讨论了用于防止LMB安全问题的阻燃隔膜和多功能隔膜。功能性隔膜的进一步扩展可以有效地应用于其他类型的电池,这表明对功能性隔膜的深入和广泛研究有望在LIBs中持续进行。

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