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首页> 外文期刊>The Journal of Chemical Physics >Theory of transport in nanofluidic channels with moderately thin electrical double layers: Effect of the wall potential modulation on solutions of symmetric and asymmetric electrolytes
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Theory of transport in nanofluidic channels with moderately thin electrical double layers: Effect of the wall potential modulation on solutions of symmetric and asymmetric electrolytes

机译:具有中等薄双电层的纳米流体通道中的传输理论:壁电势调制对对称和不对称电解质溶液的影响

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Electrokinetic phenomena play an important role for the transport in submicrometer-size channels since the electric double layers formed at the walls can occupy a substantial part of the channel volume. This presents a theoretical difficulty and specific problems are usually treated numerically or not comprehensively. In our work we present a theoretical model that allows one to obtain analytical expressions for the transport of fluid (electro-osmotic flow), ions (electric current), and dissolved charged molecules (analytes). The model is based on the weak double layer approximation and has a wide range of validity. An important feature of this theoretical approach is that it is applicable not only to symmetric but also to asymmetric 2: 1 and 1: 2 electrolytes which exhibit very interesting properties in nanoscale channels. The possibility of affecting the wall electrokinetic zeta potential by applying a transverse voltage bias is analyzed. This transverse bias is used in an attempt to control the transport in the channel and such devices are often called "fluidic field-effect transistors." Our model quantifies the effect of the voltage bias on the zeta potential of the channel wall and therefore can be used for prediction of transport and optimization of separations in such fluidic devices. (c) 2005 American Institute of Physics.
机译:电动现象对于在亚微米尺寸通道中的传输起着重要作用,因为在壁上形成的双电层可以占据通道体积的很大一部分。这带来了理论上的困难,并且通常用数字方式或不全面地处理具体问题。在我们的工作中,我们提出了一种理论模型,该模型可让人们获得流体(电渗流),离子(电流)和溶解的带电分子(分析物)的传输的解析表达式。该模型基于弱双层近似,并且具有广泛的有效性。这种理论方法的一个重要特征是,它不仅适用于对称的电解质,而且还适用于非对称的2:1和1:2电解质,这些电解质在纳米级通道中表现出非常有趣的特性。分析了通过施加横向电压偏置影响壁电动zeta电位的可能性。使用这种横向偏置来试图控制通道中的传输,这种装置通常被称为“流场效应晶体管”。我们的模型量化了偏压对通道壁zeta电位的影响,因此可用于预测此类流体装置中的迁移和优化分离。 (c)2005年美国物理研究所。

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