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氟端基自组装单分子层接枝石墨阳极诱导形成以LiF为主的固体电解质界面无机层用于快速充电锂离子电池。

Fluorine-Terminated Self-Assembled Monolayers Grafted Graphite Anode Inducing a LiF-Dominated SEI Inorganic Layer for Fast-Charging Lithium-Ion Batteries.

作者信息

Zhong Min, Bai Mingliang, Shen Wenzhuo, Zhang Jiali, Guo Shouwu

机构信息

Department of Electronic Engineering, School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

ACS Appl Mater Interfaces. 2024 Feb 7;16(5):5813-5822. doi: 10.1021/acsami.3c15639. Epub 2024 Jan 25.

Abstract

The electrochemical kinetic processes of Li ions, including the desolvation of the Li ions from the electrolyte to the solid electrolyte interphase (SEI), the transportation of desolvated Li ions across the SEI, and the charge transfer at the interface between the SEI and graphite, determine the rate performance and cycling stability of the graphitic anode in lithium-ion batteries (LIBs). In this work, fluorine-terminated self-assembled monolayers were grafted on the surface of spherical graphite particles to regulate the chemical composition and structure of SEI formed on the graphite surface in the presence of conventional ester electrolytes. The comprehensive characterization and first-principles calculation results illustrate that a uniform LiF-dominated SEI film can be generated on the as-functionalized graphite anode due to the carbon-fluorine bonds' cleavage of fluorine-terminated self-assembled monolayers. The LiF-dominated SEI film is particularly beneficial for desolvated lithium-ion transport across the SEI, affording LiCoO//graphite full cells with substantially enhanced fast-charging capability and cycle stability. This strategy should be potentially useful for modifying other anode materials to regulate the interfacial chemistry between the anode and electrolyte in lithium-ion batteries.

摘要

锂离子的电化学动力学过程,包括锂离子从电解质到固体电解质界面(SEI)的去溶剂化、去溶剂化锂离子穿过SEI的传输以及SEI与石墨之间界面处的电荷转移,决定了锂离子电池(LIBs)中石墨负极的倍率性能和循环稳定性。在这项工作中,氟端基自组装单分子层接枝在球形石墨颗粒表面,以在传统酯类电解质存在的情况下调节石墨表面形成的SEI的化学成分和结构。综合表征和第一性原理计算结果表明,由于氟端基自组装单分子层的碳氟键断裂,在功能化石墨负极上可以生成均匀的以LiF为主的SEI膜。以LiF为主的SEI膜特别有利于去溶剂化锂离子穿过SEI的传输,为LiCoO//石墨全电池提供了大幅增强的快充能力和循环稳定性。该策略对于修饰其他负极材料以调节锂离子电池中负极与电解质之间的界面化学可能具有潜在用途。

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