Optimization of Lithium Metal Anode Performance: Investigating the Interfacial Dynamics and Reductive Mechanism of Asymmetric Sulfonylimide Salts

IF 4.6 4区 化学 Q2 ELECTROCHEMISTRY
Shuang Feng, Tianxiu Yin, Letao Bian, Yue Liu, Tao Cheng
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Abstract

Asymmetric lithium salts, such as lithium (difluoromethanesulfonyl)(trifluoromethanesulfonyl)imide (LiDFTFSI), have been demonstrated to surpass traditional symmetric lithium salts with improved Li+ conductivity and the capacity to generate a stable solid electrolyte interphase (SEI) while maintaining compatibility with an aluminum (Al0) current collector. However, the intrinsic reductive mechanism through which LiDFTFSI influences battery performance remains unclear and under debate. Herein, detailed SEI reactions of LiDFTFSI–based electrolytes were investigated by combining density functional theory and molecular dynamics, aiming to clarify the formation process and atomic structure of the SEI. Our results show that asymmetric DFTFSI− weakens the interaction between carbonate solvents and Li+, and substantially alters the solvation structure, exhibiting a well-balanced coordination capacity compared to bis(trifluoromethanesulfonyl)imide (TFSI−). Nanosecond hybrid molecular dynamics simulation further reveals that preferential decomposition of LiDFTFSI produces sufficient LiF and Li2O to facilitate a robust SEI. Moreover, abundant F− generated from LiDFTFSI decomposition accumulates on the Al surface and subsequently combines with Al3+ from the current collector to form AlF3, potentially inhibiting corrosion of the current collector. Overall, these findings elucidate how LiDFTFSI regulates the solvation sheath and SEI structure, advancing the development of high-performance electrolytes compatible with current collectors.
优化金属锂阳极性能:研究不对称磺酰亚胺盐的界面动力学和还原机制
不对称锂盐,如(二氟甲烷磺酰基)(三氟甲烷磺酰基)亚胺锂(LiDFTFSI),已被证明超越了传统的对称锂盐,具有更好的锂+传导性和生成稳定的固体电解质间相(SEI)的能力,同时与铝(Al0)集流体保持兼容。然而,LiDFTFSI 影响电池性能的内在还原机制仍不清楚,还存在争议。在此,我们结合密度泛函理论和分子动力学,详细研究了基于 LiDFTFSI 的电解质的 SEI 反应,旨在阐明 SEI 的形成过程和原子结构。结果表明,与双(三氟甲烷磺酰)亚胺(TFSI-)相比,不对称 DFTFSI- 弱化了碳酸盐溶剂与 Li+ 之间的相互作用,并极大地改变了溶解结构,表现出良好的配位能力。纳秒混合分子动力学模拟进一步表明,LiDFTFSI 的优先分解产生了足够的 LiF 和 Li2O,从而促进了稳健的 SEI。此外,LiDFTFSI 分解产生的大量 F- 聚集在铝表面,随后与集流器中的 Al3+ 结合形成 AlF3,从而可能抑制集流器的腐蚀。总之,这些发现阐明了 LiDFTFSI 如何调节溶解鞘和 SEI 结构,从而推动了与电流收集器兼容的高性能电解质的开发。
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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来源期刊
Batteries
Batteries Energy-Energy Engineering and Power Technology
CiteScore
4.00
自引率
15.00%
发文量
217
审稿时长
7 weeks
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