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纳米通道水流中离子漂移的分子动力学模拟

Molecular Dynamics Simulations of Ion Drift in Nanochannel Water Flow.

作者信息

Sofos Filippos, Karakasidis Theodoros, Sarris Ioannis E

机构信息

Physics Department, University of Thessaly, 35100 Lamia, Greece.

Department of Mechanical Engineering, University of West Attica, 12244 Athens, Greece.

出版信息

Nanomaterials (Basel). 2020 Nov 28;10(12):2373. doi: 10.3390/nano10122373.

Abstract

The present paper employs Molecular Dynamics (MD) simulations to reveal nanoscale ion separation from water/ion flows under an external electric field in Poiseuille-like nanochannels. Ions are drifted to the sidewalls due to the effect of wall-normal applied electric fields while flowing inside the channel. Fresh water is obtained from the channel centerline, while ions are rejected near the walls, similar to the Capacitive DeIonization (CDI) principles. Parameters affecting the separation process, i.e., simulation duration, percentage of the removal, volumetric flow rate, and the length of the nanochannel incorporated, are affected by the electric field magnitude, ion correlations, and channel height. For the range of channels investigated here, an ion removal percentage near 100% is achieved in most cases in less than 20 ns for an electric field magnitude of E = 2.0 V/Å. In the nutshell, the ion drift is found satisfactory in the proposed nanoscale method, and it is exploited in a practical, small-scale system. Theoretical investigation from this work can be projected for systems at larger scales to perform fundamental yet elusive studies on water/ion separation issues at the nanoscale and, one step further, for designing real devices as well. The advantages over existing methods refer to the ease of implementation, low cost, and energy consumption, without the need to confront membrane fouling problems and complex electrode material fabrication employed in CDI.

摘要

本文采用分子动力学(MD)模拟,以揭示在类泊肃叶纳米通道中,外部电场作用下从水/离子流中进行的纳米级离子分离。离子在通道内流动时,由于壁面法向施加电场的作用而漂移到侧壁。从通道中心线可获得淡水,而离子在壁面附近被截留,这类似于电容去离子化(CDI)原理。影响分离过程的参数,即模拟时长、去除百分比、体积流速以及所纳入纳米通道的长度,受电场强度、离子相关性和通道高度的影响。对于此处研究的通道范围,在电场强度E = 2.0 V/Å时,大多数情况下在不到20 ns的时间内离子去除率接近100%。简而言之,在所提出的纳米级方法中,离子漂移效果令人满意,并在一个实际的小规模系统中得到应用。这项工作的理论研究可推广到更大尺度的系统,以对纳米级水/离子分离问题进行基础但难以捉摸的研究,进而设计实际设备。与现有方法相比,其优势在于易于实施、成本低和能耗低,无需面对膜污染问题以及CDI中使用的复杂电极材料制造问题。

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