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非水锂离子电池电解质的二维红外光谱和分子动力学模拟研究

Two-Dimensional Infrared Spectroscopy and Molecular Dynamics Simulation Studies of Nonaqueous Lithium Ion Battery Electrolytes.

作者信息

Lim Joonhyung, Lee Kyung-Koo, Liang Chungwen, Park Kwang-Hee, Kim Minjoo, Kwak Kyungwon, Cho Minhaeng

机构信息

Center for Molecular Spectroscopy and Dynamics, Institute for Basic Science (IBS) , Korea University , Seoul 02841 , Korea.

Department of Chemistry , Korea University , Seoul 02841 , Korea.

出版信息

J Phys Chem B. 2019 Aug 8;123(31):6651-6663. doi: 10.1021/acs.jpcb.9b02026. Epub 2019 May 30.

Abstract

Lithium ion battery (LIB) technology is undoubtedly indispensable to modern life. However, despite enormous and extended effort to improve LIB performance, our understanding of the underlying principles and mechanisms of lithium ion transport in nonaqueous LIB electrolytes remained limited until recently. There is a particular lack of knowledge of the microscopic solvation structures and fluctuation dynamics around charge carriers in real electrolytes. Typical electrolytes found in commercially available LIBs consist of lithium salts and mixed carbonate solvents, with the latter playing an essential role in promoting lithium ion transport and forming an electrically stable solid electrolyte interphase. Although a number of linear spectroscopic studies of LIB electrolytes aiming at understanding the complex nature of lithium ion solvation processes have been reported, the notion that each lithium ion is strongly solvated by carbonate molecules to form a long-lasting solvation sheath structure has remained the subject of intense debate. Here, we present the results of FTIR, fs IR pump-probe, two-dimensional IR spectroscopy, and molecular dynamics simulations reported by us and others and discuss the possible interplay of picosecond solvation dynamics and macroscopic ion transport processes within the framework of the fluctuation-dissipation relationship. Further, by measuring the time-dependent fluctuations and spectral diffusions of carbonate carbonyl stretch modes that act as excellent infrared probes for the local electrostatic environment, we show that lithium cations are not only solvated by carbonate molecules but also interact with counteranions at equilibrium depending on solvent composition. Molecular dynamics simulations support the notion that rapid chemical exchanges between carbonate solvent molecules in the first and outer solvation shells are critical for describing mobile lithium ion transport phenomena. We thus anticipate that time-resolved coherent multidimensional vibrational spectroscopy is capable of providing decisive evidence on the ultrafast solvent dynamics of various electrolytes, which is potentially helpful for designing improved and more efficient LIB electrolytes in the future.

摘要

锂离子电池(LIB)技术无疑是现代生活中不可或缺的。然而,尽管为提高LIB性能付出了巨大且持续的努力,但直到最近,我们对非水LIB电解质中锂离子传输的基本原理和机制的理解仍然有限。对于实际电解质中电荷载流子周围的微观溶剂化结构和波动动力学,尤其缺乏了解。市售LIB中常见的典型电解质由锂盐和混合碳酸酯溶剂组成,后者在促进锂离子传输和形成电稳定的固体电解质界面方面起着至关重要的作用。尽管已经报道了许多旨在理解锂离子溶剂化过程复杂性质的LIB电解质的线性光谱研究,但每个锂离子都被碳酸酯分子强烈溶剂化以形成持久的溶剂化鞘层结构这一观点仍然是激烈争论的主题。在此,我们展示了我们自己以及其他人报道的傅里叶变换红外光谱(FTIR)、飞秒红外泵浦 - 探测光谱、二维红外光谱和分子动力学模拟的结果,并在涨落耗散关系的框架内讨论了皮秒级溶剂化动力学与宏观离子传输过程之间可能的相互作用。此外,通过测量作为局部静电环境极佳红外探针的碳酸酯羰基伸缩振动模式的时间相关涨落和光谱扩散,我们表明锂阳离子不仅被碳酸酯分子溶剂化,而且在平衡状态下还根据溶剂组成与抗衡阴离子相互作用。分子动力学模拟支持这样一种观点,即第一溶剂化壳层和外部溶剂化壳层中的碳酸酯溶剂分子之间的快速化学交换对于描述移动锂离子传输现象至关重要。因此,我们预计时间分辨相干多维振动光谱能够为各种电解质的超快溶剂动力学提供决定性证据,这可能有助于未来设计出改进的、更高效的LIB电解质。

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