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石榴石填料的表面配位改善了复合固体电解质的有机-无机界面相容性。

Surface Coordination of Garnet Fillers Improves the Organic-Inorganic Interfacial Compatibility of Composite Solid Electrolyte.

作者信息

Zhang Xiaorong, Liu Shiyao, Sun Yuxue, Gao Linjun, Chen Kai, Dong Feilong, Sun Hao, Xie Haiming, Liu Jun

机构信息

National & Local United Engineering Laboratory for Power Battery, Department of Chemistry, Northeast Normal University, Changchun, 130024, China.

出版信息

Small. 2024 Dec;20(51):e2405909. doi: 10.1002/smll.202405909. Epub 2024 Oct 4.

Abstract

Composite solid electrolytes (CSEs) have become one of the most promising solid-state electrolytes due to their favorable safety and flexibility. However, the weak interaction between inorganic fillers and polymer matrix leads to poor organic-inorganic interfacial compatibility, which degrades the electrochemical performance of CSEs. Herein, it is demonstrated that LiLaZrTaO (LLZTO) can be chemically bonded to the polymer matrix by surface coordination of the 1,2-dithiolane group of lipoic acid (LA) with metal atoms on the surface of LLZTO through a combination of experimental investigations and theoretical calculations. The surface coordination not only enhances the interfacial compatibility between LLZTO and the polymer matrix, but also facilitates rapid Li transport, which leads to the ionic conductivity of the prepared CSE (P-V-M@LLZTO) as high as 6.1 × 10 S cm at 30 °C. The excellent interface compatibility ensures a stable cycle of Li/P-V-M@LLZTO/Li symmetrical cell for more than 3500 h. As a result, LiFePO/P-V-M@LLZTO/Li cell delivers the discharge capacity of 161 mAh g after 5 cycles with a capacity retention of 81% after 500 cycles at 0.5C under 30 °C. This work demonstrates that surface coordination is an effective strategy to solve the inherent interfacial incompatibility problem in CSEs.

摘要

复合固体电解质(CSEs)因其良好的安全性和柔韧性,已成为最具前景的固态电解质之一。然而,无机填料与聚合物基体之间的弱相互作用导致有机-无机界面相容性较差,从而降低了CSEs的电化学性能。在此,通过实验研究和理论计算相结合的方法表明,硫辛酸(LA)的1,2-二硫戊环基团可通过表面配位与LLZTO表面的金属原子发生化学键合,从而使LiLaZrTaO(LLZTO)与聚合物基体化学结合。这种表面配位不仅增强了LLZTO与聚合物基体之间的界面相容性,还促进了Li的快速传输,使得制备的CSE(P-V-M@LLZTO)在30℃时的离子电导率高达6.1×10⁻⁵ S cm⁻¹。优异的界面相容性确保了Li/P-V-M@LLZTO/Li对称电池能够稳定循环超过3500小时。因此,LiFePO₄/P-V-M@LLZTO/Li电池在30℃、0.5C条件下循环5次后放电容量为161 mAh g⁻¹,500次循环后容量保持率为81%。这项工作表明,表面配位是解决CSEs中固有界面不相容问题的有效策略。

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