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通过 1-(三甲基硅基)咪唑作为新型电解质添加剂来改善 MCMB 电极的界面性能以抑制 LiPF 分解。

Improved Interfacial Properties of MCMB Electrode by 1-(Trimethylsilyl)imidazole as New Electrolyte Additive To Suppress LiPF Decomposition.

机构信息

National Synchrotron Radiation Research Center, Hsin-chu, Taiwan.

出版信息

ACS Appl Mater Interfaces. 2017 Jan 25;9(3):2410-2420. doi: 10.1021/acsami.6b13105. Epub 2017 Jan 12.

DOI:10.1021/acsami.6b13105
PMID:28032739
Abstract

Trace water content in the electrolyte causes the degradation of LiPF, and the decomposed products further react with water to produce HF, which alters the surface of anode and cathode. As a result, the reaction of HF and the deposition of decomposed products on electrode surface cause significant capacity fading of cells. Avoiding these phenomena is crucial for lithium ion batteries. Considering the Lewis-base feature of the N-Si bond, 1-(trimethylsilyl)imidazole (1-TMSI) is proposed as a novel water scavenging electrolyte additive to suppress LiPF decomposition. The scavenging ability of 1-TMSI and beneficiary interfacial chemistry between the MCMB electrode and electrolyte are studied through a combination of experiments and density functional theory (DFT) calculations. NMR analysis indicated that LiPF decomposition by water was effectively suppressed in the presence of 0.2 vol % 1-TMSI. XPS surface analysis of MCMB electrode showed that the presence of 1-TMSI reduced deposition of ionic insulating products caused by LiPF decomposition. The results showed that the cells with 1-TMSI additive have better performance than the cell without 1-TMSI by facilitating the formation of solid-electrolyte interphase (SEI) layer with better ionic conductivity. It is hoped that the work can contribute to the understanding of SEI and the development of electrolyte additives for prolonged cycle life with improved performance.

摘要

痕量水会导致 LiPF 降解,而分解产物会进一步与水反应生成 HF,HF 会改变正负极的表面。结果,HF 与分解产物在电极表面的沉积导致电池的容量显著衰减。避免这些现象对于锂离子电池至关重要。考虑到 N-Si 键的路易斯碱性特征,提出了 1-(三甲基硅基)咪唑(1-TMSI)作为一种新型的除水添加剂来抑制 LiPF 的分解。通过实验和密度泛函理论(DFT)计算的结合,研究了 1-TMSI 的清除能力和 MCMB 电极与电解质之间的有益界面化学。NMR 分析表明,在存在 0.2 体积%的 1-TMSI 的情况下,水对 LiPF 的分解得到了有效抑制。MCMB 电极的 XPS 表面分析表明,1-TMSI 的存在减少了由 LiPF 分解引起的离子绝缘产物的沉积。结果表明,添加 1-TMSI 的电池比不添加 1-TMSI 的电池具有更好的性能,因为它有助于形成具有更好离子导电性的固体电解质界面(SEI)层。希望这项工作有助于对 SEI 的理解和电解质添加剂的开发,以延长循环寿命并提高性能。

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