膜
聚酰胺
氢键
反渗透
分子动力学
扩散
单体
膜结构
化学
化学工程
海水淡化
正渗透
化学物理
聚合物
材料科学
分子
高分子化学
计算化学
有机化学
热力学
生物化学
物理
工程类
作者
Ning Zhang,Shaomin Chen,Boyun Yang,Jun Huo,Xiaopeng Zhang,Junjiang Bao,Xuehua Ruan,Gaohong He
标识
DOI:10.1021/acs.jpcb.7b12790
摘要
An increasing demand for freshwater inspires further understanding of the mechanism of water diffusion in reverse-osmosis membranes for the development of high-performance membranes for desalination. Water diffusion has a close relationship with the structural and dynamical characteristics of hydrogen bonds, which is not well-understood for the confining environment inside the polyamide membrane at the molecular level. In this work, an atomistic model of a highly cross-linked polyamide membrane was built with an equilibrated mixture of m-phenylenediamine and trimesoyl chloride monomers. The structure and dynamics of water in the regions from the bulk phase to the membrane interior were investigated by molecular dynamics simulations. Explicit hydrogen bond criteria were determined for hydrogen-bonding analysis. The local distribution and orientation of water reveal that the hydrogen-bonding affinity of the hydrophilic functional groups of polymers inhibits water diffusion inside the membrane. The affinity helps to produce percolated water channels across the membrane. The hydrogen-bonding structures of water in different regions indicate dehydration is required for the entry of water into the polyamide membrane, which dominates water flux across the membrane. This paper not only deepens the understanding of the structure and dynamics of water confined in the polyamide membrane but also stimulates the future work on high-performance reverse-osmosis membranes.
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