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A ONE-DIMENSIONAL MODEL CAPTURING SELECTIVE ION TRANSPORT EFFECTS IN NANOFLUIDIC DEVICES

机译:一维模型捕获纳米流体装置中的选择性离子传输效应

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This paper presents a numerical model of one-dimensional, steady-state, multi-species, ion transport along a channel of variable width and depth. It is intended for computationally efficient simulation of devices with large variations in characteristic length scale-for example those incorporating both micro- and nanochannels. The model represents both volume charge in the fluid and surface charge on the channel walls as equivalent linear charge densities. The relative importance of the surface terms is captured by a so-called "overlap parameter" that accounts for electric double-layer effects, such as selective ion transport. Scale transitions are implemented using position-dependent area and perimeter functions. The model is validated against experimental results previously reported in the literature. In particular, model predictions are compared to measurements of fluorescent tracer species in nanochannels, of nanochannel conductivity, and of the relative enhancement and depletion of negatively and positively charged tracer species in a device combining micro-and nanochannels. Surface charge density is a critical model parameter, but in practice it is often poorly known. Therefore it is also shown how the model may be used to estimate surface charge density based on measurements. In two of the three experiments studied the externally applied voltage is low, and excellent results are achieved with electroosmotic terms neglected. In the remaining case a large external potential (~ 1 kV) is applied, necessitating an additional adjustable parameter to capture convective transport. With this addition, model performance is excellent.
机译:本文提出了一种沿宽度和深度可变的通道进行一维稳态多物种离子迁移的数值模型。它旨在对特征长度比例具有较大变化的设备(例如那些同时包含微通道和纳米通道的设备)进行高效计算的仿真。该模型将流体中的体积电荷和通道壁上的表面电荷表示为等效的线性电荷密度。表面项的相对重要性由所谓的“重叠参数”捕获,该参数解释了电双层效应,例如选择性离子迁移。比例转换是使用与位置相关的面积和周长功能实现的。该模型针对先前文献报道的实验结果进行了验证。特别是,将模型预测与纳米通道中荧光示踪物种类,纳米通道电导率以及在结合了微通道和纳米通道的设备中带负电和正电荷的示踪物种类的相对增强和耗竭的测量结果进行了比较。表面电荷密度是一个关键的模型参数,但在实践中通常鲜为人知。因此,还示出了该模型如何可以用于基于测量来估计表面电荷密度。在所研究的三个实验中的两个实验中,外部施加的电压很低,而忽略了电渗透项,则可获得出色的结果。在其余情况下,施加较大的外部电势(〜1 kV),因此需要额外的可调参数来捕获对流传输。有了此附加功能,模型性能将非常出色。

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