Lesch Volker, Montes-Campos Hadrián, Méndez-Morales Trinidad, Gallego Luis Javier, Heuer Andreas, Schröder Christian, Varela Luis M
Helmholtz-Institute Münster (IEK-12): Ionics in Energy Storage, Forschungszentrum Jülich, Corrensstrasse 46, 48149 Münster, Germany.
Grupo de Nanomateriais e Materia Branda, Departamento de Física da Materia Condensada, Universidade de Santiago de Compostela, Campus Vida s/n, E-15782 Santiago de Compostela, Spain.
J Chem Phys. 2016 Nov 28;145(20):204507. doi: 10.1063/1.4968393.
We report a molecular dynamics study on the effect of electronic polarization on the structure and single-particle dynamics of mixtures of the aprotic ionic liquid 1-ethyl-3-methylimidazolium bis-(trifluoromethylsulfonyl)-imide ([EMIM][TFSI]) doped with a lithium salt with the same anion at 298 K and 1 bar. In particular, we analyze the effect of electron density fluctuations on radial distribution functions, velocity autocorrelation functions, cage correlation functions, mean-squared displacements, and vibrational densities of states, comparing the predictions of the quantum-chemistry-based Atomistic Polarizable Potential for Liquids, Electrolytes, & Polymers (APPLE&P) with those of its nonpolarizable version and those of the standard non-polarizable Optimized Potentials for Liquid Simulations-All Atom (OPLS-AA). We found that the structure of the mixture is scarcely modified by the fluctuations in electron charge of their constituents, but their transport properties are indeed quite drastically changed, with larger mobilities being predicted for the different species in the bulk mixtures with the polarizable force field. Specifically, the mean-squared displacements are larger for the polarizable potentials at identical time intervals and the intermediate subdiffusive plateaus are greatly reduced, so the transition to the diffusive regime takes place much earlier than in the non-polarizable media. Moreover, the correlations of the added cations inside their cages are weakened out earlier and their vibrational densities of states are slightly red-shifted, reflecting the weakening effect of the electronic polarization on the Coulomb coupling in these dense ionic media. The comparison of OPLS-AA with non-polarizable APPLE&P indicates that adding polarization to OPLS-AA is not sufficient to achieve results close to experiments.
我们报告了一项分子动力学研究,该研究针对在298K和1巴条件下,掺杂有相同阴离子锂盐的非质子离子液体1-乙基-3-甲基咪唑双(三氟甲基磺酰)亚胺([EMIM][TFSI])混合物的电子极化对其结构和单粒子动力学的影响。具体而言,我们分析了电子密度涨落对径向分布函数、速度自相关函数、笼相关函数、均方位移和态振动密度的影响,将基于量子化学的液体、电解质及聚合物原子可极化势(APPLE&P)的预测结果与非极化版本以及液体模拟全原子标准非极化优化势(OPLS-AA)的预测结果进行比较。我们发现,混合物的结构几乎不受其组分电子电荷涨落的影响,但其传输性质确实发生了相当大的变化,对于具有可极化力场的本体混合物中的不同物种,预测其迁移率更大。具体来说,在相同时间间隔下,可极化势的均方位移更大,中间的亚扩散平台大大减小,因此向扩散区域的转变比在非极化介质中早得多。此外,添加阳离子在其笼内的相关性更早减弱,其态振动密度略有红移,这反映了电子极化对这些致密离子介质中库仑耦合的减弱作用。OPLS-AA与非极化APPLE&P的比较表明,在OPLS-AA中添加极化不足以获得接近实验的结果。