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环状溶剂中的锂离子形态:阴离子电荷离域和溶剂极化率的影响。

Lithium ion Speciation in Cyclic Solvents: Impact of Anion Charge Delocalization and Solvent Polarizability.

作者信息

Nachaki Ernest O, Kuroda Daniel G

机构信息

Department of Chemistry, Louisiana State University, Baton Rouge, Louisiana 70803, United States.

出版信息

J Phys Chem B. 2024 Apr 11;128(14):3408-3415. doi: 10.1021/acs.jpcb.3c06872. Epub 2024 Mar 28.

Abstract

The increasing demand for lithium batteries has triggered the search for safer and more efficient electrolytes. Insights into the atomistic description of electrolytes are critical for relating microscopic and macroscopic (physicochemical) properties. Previous studies have shown that the type of lithium salt and solvent used in the electrolyte influences its performance by dictating the speciation of the ionic components in the system. Here, we investigate the molecular origins of ion association in lithium-based electrolytes as a function of anion charge delocalization and solvent chemical identity. To this end, a family of cyano-based lithium salts in organic solvents, having a cyclic structure and containing carbonyl groups, was investigated using a combination of linear infrared spectroscopy and computations. Our results show that the formation of contact-ion pairs (CIPs) is more favorable in organic solvents containing either ester or carbonate groups and in lithium salts with an anion having low charge delocalization than in an amide/urea solvent and an anion with large charge delocalization. Ab initio computations attribute the degree of CIP formation to the energetics of the process, which is largely influenced by the chemical nature of the lithium ion solvation shell. At the molecular level, atomic charge analysis reveals that CIP formation is directly related to the ability of the solvent molecule to rearrange its electronic density upon coordination to the lithium ion. Overall, these findings emphasize the importance of local interactions in determining the nature of ion-molecule interactions and provide a molecular framework for explaining lithium ion speciation in the design of new electrolytes.

摘要

对锂电池日益增长的需求引发了对更安全、更高效电解质的探索。深入了解电解质的原子描述对于关联微观和宏观(物理化学)性质至关重要。先前的研究表明,电解质中使用的锂盐和溶剂的类型通过决定系统中离子成分的形态来影响其性能。在这里,我们研究了锂基电解质中离子缔合的分子起源与阴离子电荷离域和溶剂化学特性的关系。为此,我们使用线性红外光谱和计算相结合的方法,研究了一类在有机溶剂中的具有环状结构且含有羰基的氰基锂盐。我们的结果表明,与酰胺/脲溶剂和具有大电荷离域的阴离子相比,在含有酯基或碳酸酯基的有机溶剂以及阴离子电荷离域低的锂盐中,接触离子对(CIPs)的形成更有利。从头算计算将CIP形成的程度归因于该过程的能量学,这在很大程度上受锂离子溶剂化壳层的化学性质影响。在分子水平上,原子电荷分析表明,CIP的形成与溶剂分子在与锂离子配位时重新排列其电子密度的能力直接相关。总体而言,这些发现强调了局部相互作用在确定离子-分子相互作用性质方面的重要性,并为解释新型电解质设计中的锂离子形态提供了分子框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e159/11017243/630d1c1fb697/jp3c06872_0004.jpg

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