Baba Takeshi, Kajita Seiji, Shiga Tohru, Ohba Nobuko
Toyota Central R&D Labs., Inc., 41-1, Yokomichi, Nagakute, Aichi, 480-1192, Japan.
Sci Rep. 2022 May 4;12(1):7291. doi: 10.1038/s41598-022-10704-z.
With the growing need to obtain ideal materials for various applications, there is an increasing interest in computational methods to rapidly and accurately search for materials. Molecular dynamics simulation is one of the successful methods used to investigate liquid electrolytes with high transport properties applied in lithium-ion batteries. However, further reduction in computational cost is required to find a novel material with the desired properties from a large number of combinations. In this study, we demonstrate an effective fast evaluation technique for shear viscosity and ionic conductivity by molecular dynamics simulation for an exhaustive search of electrolyte materials with high transport properties. The proposed model was combined with a short-time correlation function of the stress tensor and empirical relationships to address the issues of inefficient and uncertain evaluation by conventional molecular dynamics methods. Because we focus on liquid electrolytes consisting of organic solvents and lithium salts, our model requires dissociation ratio and effective diffusion size of lithium salts. Our method is applied to search for the compositional combinations of electrolytes with superior transport properties even at low temperatures. These results correlate well with experimental results.
随着获取适用于各种应用的理想材料的需求不断增长,人们对用于快速准确搜索材料的计算方法的兴趣日益浓厚。分子动力学模拟是用于研究应用于锂离子电池的具有高传输特性的液体电解质的成功方法之一。然而,要从大量组合中找到具有所需特性的新型材料,还需要进一步降低计算成本。在本研究中,我们通过分子动力学模拟展示了一种有效的快速评估技术,用于剪切粘度和离子电导率,以详尽搜索具有高传输特性的电解质材料。所提出的模型与应力张量的短时相关函数和经验关系相结合,以解决传统分子动力学方法评估效率低下和不确定性的问题。由于我们专注于由有机溶剂和锂盐组成的液体电解质,我们的模型需要锂盐的解离率和有效扩散尺寸。我们的方法用于搜索即使在低温下也具有优异传输特性的电解质的组成组合。这些结果与实验结果相关性良好。