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纳米颗粒在离子液体-水和离子液体-油界面处自组装的分子动力学模拟。

Molecular dynamics simulations of nanoparticle self-assembly at ionic liquid-water and ionic liquid-oil interfaces.

机构信息

The School for Engineering of Matter, Transport, and Energy, Arizona State University, Tempe, Arizona 85287, USA.

出版信息

Langmuir. 2011 Sep 20;27(18):11339-46. doi: 10.1021/la202069m. Epub 2011 Aug 22.

DOI:10.1021/la202069m
PMID:21823636
Abstract

We have studied the self-assembly of hydrophobic nanoparticles at ionic liquid (IL)-water and IL-oil (hexane) interfaces using molecular dynamics (MD) simulations. For the 1-butyl-3-methylimidazolium hexafluorophosphate ([BMIM][PF(6)])/water system, the nanoparticles rapidly approached the IL-water interface and equilibrated more into the IL phase although they were initially in the water phase. In contrast, when the nanoparticles were dispersed in the hexane phase, they slowly approached the IL-hexane interface but remained primarily in the hexane phase. Consequently, the IL-hexane interface was rather undisturbed by the nanoparticles whereas the IL-water interface changed significantly in width and morphology to accommodate the presence of the nanoparticles. The equilibrium positions of the nanoparticles were also supported and explained by potential of mean force (PMF) calculations. Interesting ordering and charge distributions were observed at the IL-liquid interfaces. At the IL-hexane interface, the [BMIM] cations preferentially oriented themselves so that they were immersed more in the hexane phase and packed efficiently to reduce steric hindrance. The ordering likely contributed to a heightened IL density and a slightly positive charge at the IL-hexane interface. In contrast, the cations at the IL-water interface were oriented isotropically unless in the presence of nanoparticles, where the cations aligned across the nanoparticle surfaces.

摘要

我们使用分子动力学(MD)模拟研究了疏水纳米粒子在离子液体(IL)-水和 IL-油(正己烷)界面的自组装。对于 1-丁基-3-甲基咪唑六氟磷酸盐([BMIM][PF(6)])/水体系,纳米粒子虽然最初在水相中,但迅速接近 IL-水界面并更多地平衡到 IL 相中。相比之下,当纳米粒子分散在正己烷相中时,它们缓慢接近 IL-正己烷界面,但主要仍留在正己烷相中。因此,IL-正己烷界面相对不受纳米粒子干扰,而 IL-水界面在宽度和形态上发生了显著变化,以适应纳米粒子的存在。纳米粒子的平衡位置也通过平均势(PMF)计算得到支持和解释。在 IL-液体界面观察到有趣的有序和电荷分布。在 IL-正己烷界面,[BMIM]阳离子优先定向,使其更多地沉浸在正己烷相中,并有效地堆积以减少空间位阻。这种有序性可能导致 IL 密度增加和 IL-正己烷界面略微带正电荷。相比之下,阳离子在 IL-水界面上是各向同性取向的,除非存在纳米粒子,在这种情况下,阳离子会在纳米粒子表面上对齐。

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