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Multiphysics Simulation of Ion Concentration Polarization Induced by Nanoporous Membranes in Dual Channel Devices

机译:纳米多孔膜在双通道装置中引起的离子浓度极化的多物理场模拟

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摘要

Many microfluidic devices have been utilizing ion concentration polarization (ICP) phenomena by using a permselective, nanoporous membrane with electric fields for a variety of preconcentration applications. However, numerical analyses on the ICP phenomena have not drawn sufficient attention, although they are an intriguing and interdisciplinary research area. In this work, we propose a 2-D model and present numerical simulation results on the ICP, which were obtained by solving three coupled governing equations: Nernst--Planck, Navier--Stokes, and Poisson. With improved boundary conditions and assumptions, we demonstrated that the simulation results not only are consistent with other experimental results but also make it possible to thoroughly understand the ICP phenomena. In addition, we demonstrated that the preconcentration of analytes can be simulated and quantified in terms of concentration enhancement factors (CEFs) that were related to many factors, such as ionic concentration distribution, electric fields, and flow fields including vortex flows across the membrane. Furthermore, we demonstrated that a high electrophoretic mobility (EPM) of counterions in the membrane plays the most important role in producing accurate simulation results while the effect of the charge density of the membrane is relatively insignificant. Hence, it is believed that the model and simulation results would provide good guidelines to better develop microfluidic preconcentration devices based on the ICP phenomena.
机译:许多微流体装置已经通过使用具有电场的渗透选择性纳米多孔膜来利用离子浓度极化(ICP)现象,用于各种预浓缩应用。但是,尽管ICP现象的数值分析是一个有趣且跨学科的研究领域,但并未引起足够的重视。在这项工作中,我们提出了一个二维模型,并在ICP上给出了数值模拟结果,该结果是通过求解三个耦合的控制方程获得的:Nernst-Planck,Navier-Stokes和Poisson。通过改善边界条件和假设,我们证明了仿真结果不仅与其他实验结果一致,而且还使人们有可能彻底了解ICP现象。此外,我们证明了可以根据与许多因素有关的浓度增强因子(CEF)来模拟和量化分析物的预浓缩,这些因子包括离子浓度分布,电场和流场,包括穿过膜的涡流。此外,我们证明了膜中抗衡离子的高电泳迁移率(EPM)在产生精确的模拟结果中起着最重要的作用,而膜的电荷密度的影响相对微不足道。因此,相信该模型和仿真结果将为基于ICP现象更好地开发微流体预浓缩装置提供良好的指导。

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