首页> 外文会议>2015 Proceedings of the ASME 13th international conference on nanochannels, microchannels, and minichannels >EFFECT OF SURFACE CONDUCTION ON PROPAGATION OF ION-CONCENTRATION SHOCK WAVES IN ISOTACHOPHORESIS
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EFFECT OF SURFACE CONDUCTION ON PROPAGATION OF ION-CONCENTRATION SHOCK WAVES IN ISOTACHOPHORESIS

机译:表面导电对同位素电泳中离子浓度激波传播的影响

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Isotachophoresis (ITP) is a widely used nonlinear elec-trophoretic technique for preconcentration and separation of ionic species. Typically, ITP is performed in microchannels where the effect of surface conduction due to electric double layer (EDL) at channel walls is negligible compared to bulk conduction. However, when electrophoretic techniques such as ITP are integrated in nanochannels or shallow microchannels, surface conduction can alter bulk electrophoretic transport. The existing mathematical models for multispecies electrophoretic transport do not account for the competing effects of surface and bulk conduction. We present a mathematical model for multispecies electrophoretic transport incorporating the effects of surface conduction on bulk ion-transport. Our one-dimensional model is capable of describing electrophoretic systems consisting of arbitrarily large number of co-ions, having same charge polarity as the wall charge, and a single counter-ion. Based on numerical solutions of the governing equations, we show that unlike in conventional ITP where surface conduction is negligible, the zone concentrations do not obey the Kohlrausch regulating function when surface conduction is prominent. Moreover, our simulations show that surface conduction alters the propagation speeds of ion-concentration shock waves in ITP. In addition, surface conduction results in additional shock and expansion waves in ITP which are otherwise not present in conventional ITP.
机译:等速电泳(ITP)是一种用于离子浓缩和分离的广泛使用的非线性电泳技术。通常,ITP在微通道中执行,在微通道中,与体传导相比,在通道壁处由于双电层(EDL)引起的表面传导影响可忽略不计。但是,将电泳技术(例如ITP)集成到纳米通道或浅微通道中时,表面传导会改变整体电泳传输。现有的用于多物种电泳迁移的数学模型并未考虑表面和体导电的竞争效应。我们提出了一种多物种电泳运输的数学模型,该模型结合了表面传导对大体积离子运输的影响。我们的一维模型能够描述由任意数量的具有与壁电荷相同的电荷极性的共离子和单个反离子组成的电泳系统。基于控制方程的数值解,我们表明,与传统ITP中表面传导可以忽略不计的情况不同,当表面传导突出时,区域浓度不遵循Kohlrausch调节函数。此外,我们的仿真表明,表面传导会改变ITP中离子浓度冲击波的传播速度。此外,表面传导会导致ITP中出现其他冲击波和膨胀波,而传统ITP中不会出现这种冲击波和膨胀波。

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