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Bimetallic UiO‐66(Zr/Ti)‐Ionic Liquid Grafted Fillers with Intensified Lewis Acidity for High‐Performance Composite Solid Electrolytes SCIE SCOPUS

Title
Bimetallic UiO‐66(Zr/Ti)‐Ionic Liquid Grafted Fillers with Intensified Lewis Acidity for High‐Performance Composite Solid Electrolytes
Authors
Ho, Jeong‐WonChoi, JonginKim, Dong GeonHa, ChaeyeonKoo, Jin KyoNam, Myeong GyunKim, JihoonLee, Jun HyukKim, MinjunMoon, Myoung‐WoonPARK, MOON JEONGKim, Young‐JunMyung, Chang WooLee, MinjaeYoo, Pil J.
Date Issued
2023-12
Publisher
John Wiley & Sons Ltd.
Abstract
AbstractEnhancing the incorporation of highly accessible Lewis acid sites on fillers is crucial for achieving exceptional electrochemical performances in composite solid electrolytes (CSEs). Typically, they can provide a vital role in improving CSEs performance by interacting with lithium salt anions and the polymer matrix through Lewis acid–base interactions. To address this technological need, in this work, a novel filler of bimetallic UiO‐66(Zr/Ti)‐ionic liquid grafted composite (BUIL) is developed to enhance its inherent electrochemical properties. The bimetallic structure, which introduces structural defects, along with the grafted ionic liquid, abundantly creates accessible Lewis acid sites. This modification of the intrinsic Lewis acidity results in a remarkable enhancement of CSEs performances. The incorporation of BUIL in CSEs leads to a significant increase in ionic conductivity (0.458 mS cm−1) and lithium‐ion transference number (0.668) at 30 °C. Furthermore, LiFePO4/CSEs/Li cells demonstrate a high specific capacity of 148.5 mAh g−1 at a current density of 1 C, which is stably maintained over 880 cycles. Overall, the innovative synthetic approach in producing multifunctional fillers for CSEs shows strong potential for enhancing the performance of advanced lithium metal batteries.
URI
https://oasis.postech.ac.kr/handle/2014.oak/120323
DOI
10.1002/adfm.202308250
ISSN
1616-301X
Article Type
Article
Citation
Advanced Functional Materials, vol. 34, no. 14, 2023-12
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