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不同疏水性的圆柱纳米孔中受限水的结构和动力学。

Structure and dynamics of water confined in cylindrical nanopores with varying hydrophobicity.

机构信息

Dipartimento di Ingegneria Meccanica e Aerospaziale, Sapienza Università di Roma, Rome, Italy.

Dipartimento di Matematica e Fisica, Università Roma Tre, Rome, Italy.

出版信息

Philos Trans A Math Phys Eng Sci. 2021 Oct 18;379(2208):20200403. doi: 10.1098/rsta.2020.0403. Epub 2021 Aug 30.

Abstract

We report a detailed study of the main structural and dynamical features of water confined in model Lennard-Jones nanopores with tunable hydrophobicity and finite length ([Formula: see text] Å). The generic model of cylindrical confinement used is able to reproduce the wetting features of a large class of technologically and biologically relevant systems spanning from crystalline nanoporous materials, to mesoporous silica and ion channels. The aim of this work is to discuss the influence of parameters such as wall hydrophobicity, temperature, and pore size on the structural and dynamical features of confined water. Our simulation campaign confirmed the existence of a core domain in which water displays bulk-like structural features even in extreme ([Formula: see text] Å) confinement, while dynamical properties were shown to depend non-trivially on the size and hydrophobicity of the pores. This article is part of the theme issue 'Progress in mesoscale methods for fluid dynamics simulation'.

摘要

我们详细研究了模型 Lennard-Jones 纳米孔中受限水的主要结构和动力学特征,这些纳米孔具有可调的疏水性和有限的长度([Formula: see text] Å)。所使用的通用圆柱形限制模型能够再现一大类技术上和生物学上相关的系统的润湿特性,这些系统包括从结晶纳米多孔材料到介孔二氧化硅和离子通道。这项工作的目的是讨论壁疏水性、温度和孔径等参数对受限水的结构和动力学特征的影响。我们的模拟研究证实了核心区域的存在,即使在极端([Formula: see text] Å)限制下,水在该核心区域仍表现出类似体相的结构特征,而动力学特性则明显取决于孔的大小和疏水性。本文是主题为“流体动力学模拟的介观方法进展”的一部分。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7fec/8403978/9c87eddf098b/rsta20200403f01.jpg

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