Understanding of working mechanism of lithium difluoro(oxalato) borate in Li||NCM85 battery with enhanced cyclic stability

Xuerui Yang, Yaxin Huang, Jianhui Li, Weilin Huang, Wen Yang, Changquan Wu, Shijun Tang, F. Ren, Z. Gong, N. Zhou, Yong Yang
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引用次数: 1

Abstract

Despite the significant advances achieved in recent years, the development of efficient electrolyte additives to mitigate the performance degradation during long-term cycling of high-energy density lithium||nickel-rich (Li||Ni-rich) batteries remains a significant challenge. To achieve a rational design of electrolytes and avoid unnecessary waste of resources due to trial and error, it is crucial to have a comprehensive understanding of the underlying mechanism of key electrolyte components, including salts, solvents, and additives. Herein, we present the utilization of lithium difluoro(oxalate) borate (B) (LiDFOB), a B-containing lithium salt, as a functional additive for Li||LiNi0.85Co0.1Mn0.05O2 (NCM85) batteries, and comprehensively investigate its mechanism of action towards enhancing the stability of both anode and cathode interfaces. The preferential reduction and oxidation decomposition of DFOB- leads to the formation of a robust and highly electronically insulating boron-rich interfacial film on the surface of both the Li anode and NCM85 cathode. This film effectively suppresses the consumption of active lithium and the severe decomposition of the electrolyte. Furthermore, the presence of B elements in the cathode-electrolyte interfacial film, such as BF3, BF2OH, and BF2OBF2 compounds, can coordinate with the lattice oxygen of the cathode, forming strong coordination bonds. This can significantly alleviate lattice oxygen loss and mitigate detrimental structural degradation of the Ni-rich cathode. Consequently, the Li||NCM85 battery cycled in LiDFOB-containing electrolyte displays superior capacity retention of 74% after 300 cycles, even at a high charge cut-off voltage of 4.6 V. The comprehensive analysis of the working mechanisms of LiDFOB offers valuable insights for the rational design of electrolytes featuring multifunctional lithium salts or additives for high energy density lithium metal batteries.
二氟(草酸)硼酸锂在Li| NCM85电池中增强循环稳定性的工作机理研究
尽管近年来取得了重大进展,但开发高效的电解质添加剂以减轻高能密度富镍锂电池在长期循环过程中的性能下降仍然是一个重大挑战。为了实现电解质的合理设计,避免因试错而造成不必要的资源浪费,全面了解盐、溶剂、添加剂等关键电解质成分的作用机理至关重要。本文利用含B的锂盐二氟(草酸)硼酸锂(LiDFOB)作为Li| LiNi0.85Co0.1Mn0.05O2 (NCM85)电池的功能添加剂,全面研究了其增强阳极和阴极界面稳定性的作用机理。DFOB-的优先还原和氧化分解导致在Li阳极和NCM85阴极表面形成坚固且高度电子绝缘的富硼界面膜。该薄膜有效地抑制了活性锂的消耗和电解质的严重分解。此外,阴极-电解质界面膜中B元素的存在,如BF3、BF2OH和BF2OBF2化合物,可以与阴极的晶格氧配位,形成强配键。这可以显著减轻晶格氧损失和减轻有害的结构退化的富镍阴极。因此,在含lidfob的电解液中循环的Li| NCM85电池在300次循环后,即使在4.6 V的高充电截止电压下,也显示出74%的优异容量保持率。全面分析锂离子电池的工作机理,为高能量密度锂金属电池的多功能锂盐或添加剂电解质的合理设计提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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