Liang Hongmei, Wang Li, Wang Aiping, Song Youzhi, Wu Yanzhou, Yang Yang, He Xiangming
Institute of Nuclear and New Energy Technology, Tsinghua University, Beijing, 100084, People's Republic of China.
Nanomicro Lett. 2023 Jan 31;15(1):42. doi: 10.1007/s40820-022-00996-1.
The current issues and recent advances in polymer/inorganic composite electrolytes are reviewed. The molecular interaction between different components in the composite environment is highlighted for designing high-performance polymer/inorganic composite electrolytes. Inorganic filler properties that affect polymer/inorganic composite electrolyte performance are pointed out. Future research directions for polymer/inorganic composite electrolytes compatible with high-voltage lithium metal batteries are outlined.
Solid-state electrolytes (SSEs) are widely considered the essential components for upcoming rechargeable lithium-ion batteries owing to the potential for great safety and energy density. Among them, polymer solid-state electrolytes (PSEs) are competitive candidates for replacing commercial liquid electrolytes due to their flexibility, shape versatility and easy machinability. Despite the rapid development of PSEs, their practical application still faces obstacles including poor ionic conductivity, narrow electrochemical stable window and inferior mechanical strength. Polymer/inorganic composite electrolytes (PIEs) formed by adding ceramic fillers in PSEs merge the benefits of PSEs and inorganic solid-state electrolytes (ISEs), exhibiting appreciable comprehensive properties due to the abundant interfaces with unique characteristics. Some PIEs are highly compatible with high-voltage cathode and lithium metal anode, which offer desirable access to obtaining lithium metal batteries with high energy density. This review elucidates the current issues and recent advances in PIEs. The performance of PIEs was remarkably influenced by the characteristics of the fillers including type, content, morphology, arrangement and surface groups. We focus on the molecular interaction between different components in the composite environment for designing high-performance PIEs. Finally, the obstacles and opportunities for creating high-performance PIEs are outlined. This review aims to provide some theoretical guidance and direction for the development of PIEs. [Image: see text]
要点:综述了聚合物/无机复合电解质的当前问题和最新进展。强调了复合环境中不同组分之间的分子相互作用,以设计高性能聚合物/无机复合电解质。指出了影响聚合物/无机复合电解质性能的无机填料特性。概述了与高压锂金属电池兼容的聚合物/无机复合电解质的未来研究方向。
摘要:固态电解质(SSEs)因其具有高安全性和能量密度的潜力,被广泛认为是下一代可充电锂离子电池的关键组成部分。其中,聚合物固态电解质(PSEs)因其柔韧性、形状多样性和易于加工性,成为替代商用液体电解质的有竞争力的候选材料。尽管PSEs发展迅速,但其实际应用仍面临诸多障碍,包括离子电导率低、电化学稳定窗口窄和机械强度差等问题。通过在PSEs中添加陶瓷填料形成的聚合物/无机复合电解质(PIEs)融合了PSEs和无机固态电解质(ISEs)的优点,由于其丰富的具有独特特性的界面,表现出可观的综合性能。一些PIEs与高压正极和锂金属负极具有高度兼容性,这为获得高能量密度的锂金属电池提供了理想途径。本综述阐述了PIEs的当前问题和最新进展。PIEs的性能受到填料特性的显著影响,包括类型、含量、形态、排列和表面基团等。我们关注复合环境中不同组分之间的分子相互作用,以设计高性能的PIEs。最后,概述了制备高性能PIEs的障碍和机遇。本综述旨在为PIEs的发展提供一些理论指导和方向。[图片:见正文]