锂电池局部化高浓度电解质的计算研究进展

IF 3.5 4区 化学 Q2 ELECTROCHEMISTRY
Xi Chen, Hao Yu
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引用次数: 0

摘要

电解质工程对提高锂电池的性能起着至关重要的作用。为了保留高浓度电解质的优点,缓解高浓度电解质的缺点,在高浓度电解质中加入“稀释剂”衍生出本地化高浓度电解质的想法被提出,并成为高压锂电池、阻燃锂电池、低温锂电池等领域关注的焦点。为了阐明局部高浓度电解质的基本原理,人们做了大量的努力。本文综述了局域化高浓度电解质研究的最新计算进展,重点介绍了应用计算技术分析局域化高浓度电解质锂电池的氧化还原稳定性、溶剂化结构和界面特性。计算方法与实验方法相结合,相辅相成,有助于理解其工作机理,为未来更好的锂电池设计本地化的高浓度电解质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Computational Review on Localized High-Concentration Electrolytes in Lithium Batteries

A Computational Review on Localized High-Concentration Electrolytes in Lithium Batteries

Electrolyte engineering plays a vital role in improving the battery performance of lithium batteries. The idea of localized high-concentration electrolytes that are derived by adding “diluent” in high-concentration electrolytes has been proposed to retain the merits and alleviate the disadvantages of high-concentration electrolytes, and it has become the focus of attention in high-voltage lithium batteries, flame-retardant lithium batteries, and low-temperature lithium batteries. Extensive efforts have been made to elucidate the fundamentals of localized high-concentration electrolytes. This review provides an overview of state-of-the-art computational progress in the studies of localized high-concentration electrolytes, focusing on the application of computational techniques to analyze the redox stability, solvation structures, and interface characteristics of lithium batteries with localized high-concentration electrolytes. Integrated with experimental approaches, complementing each other, computational methods are believed to be conducive to understanding the working mechanism and designing localized high-concentration electrolytes for better lithium batteries in the future.

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来源期刊
ChemElectroChem
ChemElectroChem ELECTROCHEMISTRY-
CiteScore
7.90
自引率
2.50%
发文量
515
审稿时长
1.2 months
期刊介绍: ChemElectroChem is aimed to become a top-ranking electrochemistry journal for primary research papers and critical secondary information from authors across the world. The journal covers the entire scope of pure and applied electrochemistry, the latter encompassing (among others) energy applications, electrochemistry at interfaces (including surfaces), photoelectrochemistry and bioelectrochemistry.
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