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基于第一性原理和经典反应分子动力学研究锂离子在本体有机电解质中的溶剂化和扩散

Lithium ion solvation and diffusion in bulk organic electrolytes from first-principles and classical reactive molecular dynamics.

作者信息

Ong Mitchell T, Verners Osvalds, Draeger Erik W, van Duin Adri C T, Lordi Vincenzo, Pask John E

机构信息

Materials Science Division, §Center for Applied Scientific Computing, and ∥Physics Division, Lawrence Livermore National Laboratory , Livermore, California 94550, United States .

出版信息

J Phys Chem B. 2015 Jan 29;119(4):1535-45. doi: 10.1021/jp508184f. Epub 2015 Jan 7.

Abstract

Lithium-ion battery performance is strongly influenced by the ionic conductivity of the electrolyte, which depends on the speed at which Li ions migrate across the cell and relates to their solvation structure. The choice of solvent can greatly impact both the solvation and diffusivity of Li ions. In this work, we used first-principles molecular dynamics to examine the solvation and diffusion of Li ions in the bulk organic solvents ethylene carbonate (EC), ethyl methyl carbonate (EMC), and a mixture of EC and EMC. We found that Li ions are solvated by either carbonyl or ether oxygen atoms of the solvents and sometimes by the PF6(-) anion. Li(+) prefers a tetrahedrally coordinated first solvation shell regardless of which species are involved, with the specific preferred solvation structure dependent on the organic solvent. In addition, we calculated Li diffusion coefficients in each electrolyte, finding slightly larger diffusivities in the linear carbonate EMC compared to the cyclic carbonate EC. The magnitude of the diffusion coefficient correlates with the strength of Li(+) solvation. Corresponding analysis for the PF6(-) anion shows greater diffusivity associated with a weakly bound, poorly defined first solvation shell. These results can be used to aid in the design of new electrolytes to improve Li-ion battery performance.

摘要

锂离子电池的性能受到电解质离子电导率的强烈影响,而电解质离子电导率取决于锂离子在电池中迁移的速度,并与其溶剂化结构相关。溶剂的选择会对锂离子的溶剂化和扩散率产生重大影响。在这项工作中,我们使用第一性原理分子动力学来研究锂离子在本体有机溶剂碳酸亚乙酯(EC)、碳酸甲乙酯(EMC)以及EC和EMC混合物中的溶剂化和扩散情况。我们发现锂离子被溶剂的羰基或醚氧原子溶剂化,有时也会被PF6(-)阴离子溶剂化。无论涉及哪些物种,Li(+)都倾向于具有四面体配位的第一溶剂化层,具体的首选溶剂化结构取决于有机溶剂。此外,我们计算了每种电解质中Li的扩散系数,发现与环状碳酸酯EC相比,线性碳酸酯EMC中的扩散率略大。扩散系数的大小与Li(+)溶剂化的强度相关。对PF6(-)阴离子的相应分析表明,扩散率较大与弱结合、定义不明确的第一溶剂化层有关。这些结果可用于辅助设计新型电解质,以提高锂离子电池的性能。

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