机械
渗透
材料科学
反渗透
海水淡化
流量(数学)
磁导率
化学物理
流动阻力
正渗透
水运
分子动力学
热力学
离子
流体力学
膜
流速
水流
水力阻力
微分方程
电渗
环境科学
电流(流体)
作者
Fan Qiao Li,Ziheng Wang,Yanbo Xie
标识
DOI:10.1017/jfm.2025.10961
摘要
Reverse osmosis (RO) is an efficient desalination approach, but the widely used solution-diffusion model was challenged for failing to explain field-dependent permeabilities, particularly when the continuum theory may break down in Ångström scale. Here we developed a non-equilibrium statistical theory, supported by molecular dynamics simulations that captures the field-dependent water and ion permeabilities through a single Ångström-scale channel. Surprisingly, our simulation reveals a counterintuitive negative differential flow resistance (NDFR) effect, where the flow velocity decreases with increasing pressure. This phenomenon arises from ion trapping at the nanotube entrance, caused by dielectric and dehydration barriers and hydrodynamic friction. The NDFR effect significantly reduces water permeability and may be a predominant factor constraining the selectivity-permeability trade-off in RO. Our statistical theory is based on a bidirectional escape framework that predicts the pressure- and size-dependent permeabilities and explains the NDFR effect. Our findings offer molecular-level insights into RO and can be extended to broader transport phenomena in confined systems.
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