Tracing the origin of heterogeneities in the local structure and very sluggish dynamics of [Cho][Gly] ionic liquid confined between rutile and graphite slit nanopores: A MD study.

Farzad Khorrami, M. H. Kowsari
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引用次数: 1

Abstract

Atomistic-level understanding of the interfacial behavior of ionic liquids (ILs) confined in slit-like nanopores is of both fundamental and practical interest. Molecular dynamics (MD) is an efficient and robust approach to characterize the properties of confined systems in contrast with some limitations in direct experimental measurements at low-dimensions. In this research, MD simulations are used to study the biocompatible IL cholinium glycinate, [Cho][Gly], confined between two parallel plates of rutile or graphite, with the separation distance of 24 Å along the z-direction. As expected, both the microscopic local structure and dynamical behavior of the confined IL are very heterogeneous and depend effectively on the position of the ions to the pore walls. The ion z-density profile is used for segmentation of the inter-wall space into a central region and two outer layers. The behavior of ions in the central region is very similar to the bulk IL, while the behavior of the arranged ionic layers adjacent to the pore walls shows the clear deviation from the bulk IL due to confinement. In general, the confined IL shows a "solid-like" dynamics at T = 353 K, especially in the outer layers near the walls as well as in the z-direction. The presence of the "IL-rutile wall" electrostatic interaction and hydrogen bonding (H-bonding) causes a significant difference in the local structure and very sluggish dynamics of the IL adjacent to the rutile walls vs the graphite walls. Simulation reveals a significant decrease in the average number of key cation-anion H-bonds at the outer layers relative to the central regions of both confined systems. The recognized [Cho]+⋯[Gly]-⋯[Cho]+ bridge structure at the central region is lost in the vicinity of the rutile walls due to inaccessibility of the hydroxyl hydrogen atom, which forms a stable H-bond with the rutile oxygen site. However, another unprecedented [Gly]- bridge is confirmed and preserved near the graphite walls, and [Cho]+ cations prefer to stay parallel to the wall surface to form the van der Waals dispersion interactions with the uncharged graphite walls.
[Cho][Gly]离子液体在金红石和石墨狭缝纳米孔之间的局部结构非均质性和非常缓慢的动力学:一个MD研究。
原子水平上理解狭缝状纳米孔中离子液体(ILs)的界面行为具有基础和实际意义。相对于低维直接实验测量的一些局限性,分子动力学(MD)是表征受限系统性质的一种有效和可靠的方法。在本研究中,采用MD模拟的方法研究了生物相容性IL胆酰甘氨酸[Cho][Gly],它被限制在两个平行的金红石或石墨板之间,沿z方向的分离距离为24 Å。正如预期的那样,微观局部结构和受限IL的动力学行为都是非常不均匀的,并且有效地依赖于离子在孔壁上的位置。离子z密度分布用于将壁间空间分割成一个中心区域和两个外层。中心区域离子的行为与体IL非常相似,而靠近孔壁排列的离子层的行为由于约束而与体IL有明显的偏差。总的来说,在T = 353 K时,受限IL表现出“固体状”动力学,特别是在靠近壁的外层以及在z方向上。“IL-金红石壁”静电相互作用和氢键(h -键)的存在导致金红石壁附近的IL与石墨壁的局部结构和非常缓慢的动力学存在显着差异。模拟结果表明,相对于两种封闭体系的中心区域,外层的正负离子氢键的平均数目显著减少。在中心区域被识别的[Cho]+⋯[Gly]-⋯[Cho]+桥结构在金红石壁附近丢失,因为羟基氢原子无法接近,它与金红石氧位点形成稳定的氢键。然而,另一个史无前例的[Gly]-桥被证实并保存在石墨壁附近,[Cho]+阳离子倾向于保持与壁表面平行,与不带电的石墨壁形成范德华色散相互作用。
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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