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锂离子凝胶聚合物电解质中惰性填料的选择策略

Inert Filler Selection Strategies in Li-Ion Gel Polymer Electrolytes.

作者信息

Pan Jun, Zhao Pei, Yao Heliang, Hu Lulu, Fan Hong Jin

机构信息

School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore 637371, Singapore.

State Key Laboratory of High-Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Science, Shanghai 200050, China.

出版信息

ACS Appl Mater Interfaces. 2024 Sep 18;16(37):48706-48712. doi: 10.1021/acsami.3c05105. Epub 2023 Jun 6.

Abstract

The main role of inert fillers in polymer electrolytes is to enhance ionic conductivity. However, lithium ions in gel polymer electrolytes (GPEs) conduct in liquid solvent rather than along the polymer chains. So far, the main role of inert fillers in improving the electrochemical performance of GPEs is still unclear. Here, various low-cost and common inert fillers (AlO, SiO, TiO, ZrO) are introduced into GPEs to study their effects on Li-ion polymer batteries. It is found that the addition of inert fillers has different effects on ionic conductivity, mechanical strength, thermal stability, and, dominantly, interfacial properties. Compared with other gel electrolytes containing SiO, TiO, or ZrO fillers, those with AlO fillers exhibit the most favorable performance. The high performance is ascribed to the interaction between the surface functional groups of AlO and LiNiCoMnO, which alleviates the decomposition of the organic solvent by the cathode, resulting in the formation of a high-quality Li conductor interfacial layer. This study provides an important reference for the selection of fillers in GPEs, surface modification of separators, and cathode surface coating.

摘要

惰性填料在聚合物电解质中的主要作用是提高离子电导率。然而,凝胶聚合物电解质(GPEs)中的锂离子在液体溶剂中传导,而非沿着聚合物链传导。到目前为止,惰性填料在改善GPEs电化学性能方面的主要作用仍不明确。在此,将各种低成本且常见的惰性填料(AlO、SiO、TiO、ZrO)引入GPEs中,以研究它们对锂离子聚合物电池的影响。研究发现,添加惰性填料对离子电导率、机械强度、热稳定性,以及主要的界面性能有不同影响。与其他含有SiO、TiO或ZrO填料的凝胶电解质相比,含有AlO填料的凝胶电解质表现出最优异的性能。这种高性能归因于AlO的表面官能团与LiNiCoMnO之间的相互作用,这减轻了阴极对有机溶剂的分解作用,从而形成了高质量的锂导体界面层。该研究为GPEs中填料的选择、隔膜的表面改性以及阴极表面涂层提供了重要参考。

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