How do external forces related to mass and charge affect the structures and dynamics of an ionic liquid?

Yongji Guan, Ryan Clark, F. Philippi, Xiaoping Zhang, T. Welton
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引用次数: 2

Abstract

Ionic liquids (ILs) are novel promising materials widely used in various fields. Their structures and properties can be tuned by means of external perturbations, thus further broadening their applications. Herein, forces proportional to atomic mass (mass-related field) and atomic charge (electric field) are applied in molecular dynamics simulations to the IL 1-butyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide to investigate the origin of the resulting changes in structures and dynamics. The results show that both electric and mass-related fields cause the ion cages to expand and deform, eventually leading to their breakdown to produce a transformation of ILs from the cage structure to a channel-like structure, which results in faster self-diffusion of ions in the directions of the applied force and to a lesser extent other directions. Further comparison of electric and mass-related fields demonstrates that only the electric fields reorientate cations to produce a hydrodynamically favored conformation in the force direction, which shows faster diffusion. The cis isomer of the anion is preferred in the presence of the electric fields, whereas applying the forces proportional to mass does not change the anion conformer equilibrium significantly. The results presented in this work aid in the understanding of how ions adjust their structures to adapt to external perturbations and facilitate the application of ILs as electrolytes.
与质量和电荷有关的外力如何影响离子液体的结构和动力学?
离子液体是一种具有广阔应用前景的新型材料。它们的结构和性质可以通过外部扰动来调节,从而进一步扩大了它们的应用范围。本文采用与原子质量成正比的力(质量相关场)和与原子电荷成正比的力(电场)对IL - 1-丁基-3-甲基咪唑双(三氟甲基磺酰基)亚胺进行分子动力学模拟,研究其结构和动力学变化的起源。结果表明,电场和质量相关场均使离子笼膨胀变形,最终导致其击穿,使离子笼结构转变为通道状结构,使离子在作用力方向上的自扩散速度更快,而在其他方向上的自扩散程度较小。对电场和质量相关场的进一步比较表明,只有电场才能使阳离子重新定向,在力方向上产生有利于流体动力学的构象,从而显示更快的扩散。在电场作用下阴离子的顺式异构体是优选的,而施加与质量成正比的力不会显著改变阴离子的构象平衡。这项工作的结果有助于理解离子如何调整其结构以适应外部扰动,并促进il作为电解质的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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