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高浓度离子液体电解质中LiNiO的循环稳定性增强

Enhanced Cycle Stability of LiNiO in a Highly Concentrated Ionic Liquid Electrolyte.

作者信息

Liu Huazhen, Maeda Hiroki, Hwang Jinkwang, Matsumoto Kazuhiko

机构信息

Graduate School of Energy Science, Kyoto University, Yoshida-honmachi, Sakyo-ku, Kyoto 606-8501, Japan.

出版信息

ACS Appl Mater Interfaces. 2024 Oct 9;16(40):53963-53971. doi: 10.1021/acsami.4c12262. Epub 2024 Sep 28.

Abstract

LiNiO (LNO) is a promising positive material for next-generation vehicle batteries because of its high theoretical capacity and lower cost compared to the Co analogues. However, its unstable performance such as Ni dissolution results in capacity fade and poor cycle life, impeding its practical application. Since hydrogen fluoride (HF), the hydrolysis product of LiPF, is highly reactive with LNO positive electrodes, exploring LiPF-free electrolytes is attractive to improve cycle stability and eliminate parasitic reactions. Herein, a series of ionic liquids (ILs) with Li[FSA] ([FSA] = bis(fluorosulfonyl)amide) salts are investigated as electrolytes compatible with the LNO positive electrode. The use of IL electrolytes enhances cycle performance, achieving a high capacity retention of 73.1% in Li/LNO cells after 500 cycles with a high Li salt concentration. Further characterizations confirm that the cathode electrolyte interphase formed on the LNO positive electrode in the highly Li-salt concentrated ILs suppresses Ni dissolution, structural degradation, and side reactions. Meanwhile, the above electrolyte is capable of effectively alleviating Al corrosion at high potentials. This work highlights the role of electrolytes and contributes to addressing the stability concerns of positive electrode components at high voltages.

摘要

锂镍氧化物(LNO)因其高理论容量以及与钴类似物相比成本较低,是下一代车用电池极具潜力的正极材料。然而,其不稳定的性能,如镍溶解,会导致容量衰减和循环寿命不佳,阻碍了其实际应用。由于LiPF的水解产物氟化氢(HF)与LNO正极具有高反应活性,探索无LiPF电解质对于提高循环稳定性和消除寄生反应具有吸引力。在此,一系列含Li[FSA]([FSA]=双(氟磺酰)酰胺)盐的离子液体(ILs)被研究作为与LNO正极兼容的电解质。使用IL电解质可提高循环性能,在高锂盐浓度下,Li/LNO电池经过500次循环后实现了73.1%的高容量保持率。进一步的表征证实,在高锂盐浓度的ILs中,LNO正极上形成的阴极电解质界面抑制了镍溶解、结构降解和副反应。同时,上述电解质能够有效缓解高电位下的铝腐蚀。这项工作突出了电解质的作用,并有助于解决高压下正极组件的稳定性问题。

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