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可实现高压高安全性锂离子电池的非易燃全氟电解质

Nonflammable All-Fluorinated Electrolyte Enabling High-Voltage and High-Safety Lithium-Ion Cells.

作者信息

Ouyang Dongxu, Guan Jun, Wan Xiaotian, Liu Bo, Miao Chunyang, Wang Zhirong

机构信息

College of Safety Science and Engineering, Nanjing Tech University, Nanjing 211816, China.

Sichuan Province All-electric Navigation Aircraft Key Technology Engineering Research Center, Civil Aviation Flight University of China, Guanghan 618307, China.

出版信息

ACS Appl Mater Interfaces. 2024 Aug 14;16(32):42894-42904. doi: 10.1021/acsami.4c07886. Epub 2024 Aug 2.

DOI:10.1021/acsami.4c07886
PMID:39093917
Abstract

In this study, a nonflammable all-fluorinated electrolyte for lithium-ion cells with a Li(NiMnCo)O cathode is investigated under high voltages. This electrolyte, named FT46, consists of fluoroethylene carbonate (FEC) and bis(2,2,2-trifluoroethyl) carbonate (TFEC) in a mass ratio of 4:6. Compared to a commercially available electrolyte and several other fluorinated electrolytes, cells containing FT46 demonstrate significantly better cycling performances under high voltage (3.0-4.5 V). This result may be ascribed to the generation of a stable, smooth, and thin passivation layer and the improved solvation structure formed by FT46. The LiF-rich passivation layer strengthens the electrode/electrolyte interface, inhibits the degradation of the electrode, and suppresses side reactions between the electrodes and electrolytes under high voltage. The solvation structure formed by FT46 is derived from anions, enabling an enhanced Li migration rate and inhibiting lithium plating generation. Additionally, due to the nonflammability of the electrolyte and the stable passivation layers, FT46 cells also demonstrate promising safety characteristics when exposed to typical abusive conditions, such as thermal abuse, mechanical abuse, and electrical abuse.

摘要

在本研究中,对一种用于含Li(NiMnCo)O阴极的锂离子电池的非易燃全氟电解质在高电压下进行了研究。这种名为FT46的电解质由碳酸氟乙烯酯(FEC)和双(2,2,2-三氟乙基)碳酸酯(TFEC)按质量比4:6组成。与市售电解质和其他几种含氟电解质相比,含有FT46的电池在高电压(3.0 - 4.5V)下表现出显著更好的循环性能。这一结果可能归因于形成了稳定、光滑且薄的钝化层以及FT46形成的改善的溶剂化结构。富含LiF的钝化层强化了电极/电解质界面,抑制了电极的降解,并抑制了高电压下电极与电解质之间的副反应。FT46形成的溶剂化结构源自阴离子,使得Li迁移速率提高并抑制锂镀层的产生。此外,由于电解质的非易燃性和稳定的钝化层,FT46电池在暴露于典型的滥用条件(如热滥用、机械滥用和电气滥用)时也表现出良好的安全特性。

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