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SWCNT 纳米通道限域中溶剂杂质:原子模拟研究水动力学的长度依赖性。

Cosolvent Impurities in SWCNT Nanochannel Confinement: Length Dependence of Water Dynamics Investigated with Atomistic Simulations.

机构信息

Department of Biological Sciences , Indian Institute of Science Education and Research Kolkata , Mohanpur 741 246 , India.

Advanced Polymer Lab in association with Polymer Research Centre , IISER Kolkata, ADO ADDITIVES MFG PVT. LTD. , 201/A, Nadibhag 2nd Lane , Madhyamgram, Kolkata 700 128 , India.

出版信息

J Chem Inf Model. 2019 May 28;59(5):2026-2034. doi: 10.1021/acs.jcim.8b00889. Epub 2019 Apr 3.

DOI:10.1021/acs.jcim.8b00889
PMID:30908024
Abstract

The advent of nanotechnology has seen a growing interest in the nature of fluid flow and transport under nanoconfinement. The present study leverages fully atomistic molecular dynamics (MD) simulations to study the effect of nanochannel length and intrusion of molecules of the organic solvent, hexafluoro-2-propanol (HFIP), on the dynamical characteristics of water within it. Favorable interactions of HFIP with the nanochannels comprised of single-walled carbon nanotubes traps them over time scales greater than 100 ns, and confinement confers small but distinguishable spatial redistribution between neighboring HFIP pairs. Water molecules within the nanochannels show clear signatures of dynamical slowdown relative to bulk water even for pure systems. The presence of HFIP causes further rotational and translational slowdown in waters when the nanochannel dimension falls below a critical length of 30 Å. The enhanced slowdown in the presence of HFIP is quantified from characteristic relaxation parameters and diffusion coefficients in the absence and presence of HFIP. It is finally seen that the net flow of water between the ends of the nanochannel shows a decreasing dependence with nanochannel length only when the number of HFIP molecules is small. These results lend insights into devising ways of modulating solvent properties within nanochannels with cosolvent impurities.

摘要

纳米技术的出现引起了人们对纳米受限下流体流动和输运性质的浓厚兴趣。本研究利用全原子分子动力学(MD)模拟来研究纳米通道长度和有机溶剂六氟异丙醇(HFIP)分子侵入对其中水动力学特性的影响。HFIP 与由单壁碳纳米管组成的纳米通道之间的有利相互作用会在大于 100 ns 的时间尺度上捕获它们,而受限则会导致相邻 HFIP 对之间发生微小但可区分的空间再分布。即使在纯体系中,纳米通道中的水分子相对于体相水也表现出明显的动力学减速特征。当纳米通道尺寸小于 30 Å 的临界长度时,HFIP 的存在会导致水中的旋转和平移进一步减速。通过在不存在和存在 HFIP 的情况下测量特征弛豫参数和扩散系数,定量了 HFIP 存在时水的增强减速。最后可以看出,只有当 HFIP 分子数量较少时,纳米通道两端之间的水净流量才会随着纳米通道长度的减小而呈下降趋势。这些结果为在纳米通道中设计通过共溶剂杂质来调节溶剂性质的方法提供了思路。

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