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非溶剂化氟代芳烃共溶剂实现了含有机硫电解质的高压锂离子电池的长期循环。

Nonsolvating Fluoroaromatic Cosolvent Enabled Long-Term Cycling of High-Voltage Lithium-Ion Batteries with Organosulfur Electrolytes.

作者信息

Dato Michael, Hafiz Hasnain, Liu Ziqi, Hung Chengi, Lopez Jeffrey, Guo Juchen, Amine Khalil, He Meinan, Su Chi-Cheung

机构信息

Chemical Sciences and Engineering Division, Argonne National Laboratory, Lemont, Illinois 60439, United States.

General Motors Global Research and Development Center, Warren, Michigan 48090, United States.

出版信息

ACS Appl Mater Interfaces. 2024 Aug 14;16(32):42069-42079. doi: 10.1021/acsami.4c05263. Epub 2024 Aug 5.

DOI:10.1021/acsami.4c05263
PMID:39102444
Abstract

The structure-activity relationships of nonsolvating cosolvents for organosulfur-based electrolyte systems were revealed. The performance of nonsolvating dilutant fluorobenzene (FB) was compared to various fluorinated ether dilutants in high-voltage electrolytes containing a concentration of 1.2 M LiPF dissolved in fluoroethylene carbonate (FEC), ethyl methyl sulfone (EMS), and the dilutant. In a high-voltage and high-loading LiNiMnCoO (NMC811) full cell configuration, the organosulfur-based electrolyte containing FB dilutant enabled superior electrochemical performance compared to the electrolytes using other nonsolvating fluorinated ether formulations. Moreover, the FB-containing electrolyte exhibited the highest ionic conductivity and lowest viscosity among all organosulfur-based electrolytes containing nonsolvating dilutant. These improvements are attributed to the enhanced physical properties of electrolyte and lithium-ion mobility. Furthermore, by employing first-principles simulations, the observed suppression of side reactions at high voltage is linked to FB's lower reactivity toward singlet dioxygen, which is likely produced at the NMC interface. Overall, FB is considered an excellent diluent that does not impede cell operation by mass decomposition at the cathode.

摘要

揭示了用于有机硫基电解质体系的非溶剂化共溶剂的构效关系。在含有溶解于氟代碳酸乙烯酯(FEC)、乙基甲基砜(EMS)和稀释剂中的1.2 M LiPF浓度的高压电解质中,将非溶剂化稀释剂氟苯(FB)的性能与各种氟化醚稀释剂进行了比较。在高压和高负载的LiNiMnCoO(NMC811)全电池配置中,与使用其他非溶剂化氟化醚配方的电解质相比,含有FB稀释剂的有机硫基电解质具有优异的电化学性能。此外,在所有含有非溶剂化稀释剂的有机硫基电解质中,含FB的电解质表现出最高的离子电导率和最低的粘度。这些改进归因于电解质物理性能的增强和锂离子迁移率的提高。此外,通过采用第一性原理模拟,观察到的高压下副反应的抑制与FB对单线态双氧的较低反应性有关,单线态双氧可能在NMC界面产生。总体而言,FB被认为是一种优异的稀释剂,不会因阴极处的质量分解而妨碍电池运行。

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