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双盐电解质添加剂可实现锂金属电池的高耐湿性和良好的双电层。

Dual-Salt Electrolyte Additive Enables High Moisture Tolerance and Favorable Electric Double Layer for Lithium Metal Battery.

作者信息

Wen Zuxin, Fang Wenqiang, Wang Fenglin, Kang Hong, Zhao Shuoqing, Guo Shaojun, Chen Gen

机构信息

School of Materials Science and Engineering, Key Laboratory of Electronic Packaging and Advanced Functional Materials of Hunan Province, Central South University, Changsha, 410083, P. R. China.

School of Materials Science & Engineering and BIC-ESAT, College of Engineering, Peking University, Beijing, 100871, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2024 Mar 22;63(13):e202314876. doi: 10.1002/anie.202314876. Epub 2024 Feb 20.

Abstract

The carbonate electrolyte chemistry is a primary determinant for the development of high-voltage lithium metal batteries (LMBs). Unfortunately, their implementation is greatly plagued by sluggish electrode interfacial dynamics and insufficient electrolyte thermodynamic stability. Herein, lithium trifluoroacetate-lithium nitrate (LiTFA-LiNO ) dual-salt additive-reinforced carbonate electrolyte (LTFAN) is proposed for stabilizing high-voltage LMBs. We reveal that 1) the in situ generated inorganic-rich electrode-electrolyte interphase (EEI) enables rapid interfacial dynamics, 2) TFA preferentially interacts with moisture over PF to strengthen the moisture tolerance of designed electrolyte, and 3) NO is found to be noticeably enriched at the cathode interface on charging, thus constructing Li -enriched, solvent-coordinated, thermodynamically favorable electric double layer (EDL). The superior moisture tolerance of LTFAN and the thermodynamically stable EDL constructed at cathode interface play a decisive role in upgrading the compatibility of carbonate electrolyte with high-voltage cathode. The LMBs with LTFAN realize 4.3 V-NCM523/4.4 V-NCM622 superior cycling reversibility and excellent rate capability, which is the leading level of documented records for carbonate electrode.

摘要

碳酸盐电解质化学性质是高压锂金属电池(LMBs)发展的主要决定因素。不幸的是,其应用受到电极界面动力学迟缓以及电解质热力学稳定性不足的严重困扰。在此,提出了三氟乙酸锂 - 硝酸锂(LiTFA - LiNO₃)双盐添加剂增强的碳酸盐电解质(LTFAN)来稳定高压LMBs。我们发现:1)原位生成的富含无机物的电极 - 电解质界面(EEI)可实现快速的界面动力学;2)TFA与水分的相互作用优先于PF₆⁻,从而增强了所设计电解质的耐湿性;3)发现NO₃⁻在充电时在阴极界面显著富集,从而构建了富含Li⁺、溶剂配位、热力学有利的双电层(EDL)。LTFAN优异的耐湿性以及在阴极界面构建的热力学稳定的EDL在提升碳酸盐电解质与高压阴极的兼容性方面起决定性作用。采用LTFAN的LMBs实现了4.3 V - NCM523/4.4 V - NCM622的卓越循环可逆性和优异倍率性能,这是碳酸盐电极文献记录中的领先水平。

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