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Sample Zone Dynamics in Peak Mode Isotachophoresis

机译:峰模式等速电泳中的样品区动力学

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We present a theoretical and experimental study of analyte preconcentration via peak mode isotachophoresis (ITP). We perform perturbation analysis of the governing equations that includes electromigration, diffusion, buffer reactions, and nonlinear ionic strength effects. This analysis relaxes the inherent numerical stiffness and achieves a fast solution to the transient sample evolution problem. In this model, we have incorporated a semiempirical relation to capture dispersion phenomenon within ITP interfaces. We also present a simple, closed-form analytical model that identifies key parameters governing the preconcentration dynamics in peak mode ITP. We have validated our models through a detailed experimental study performed in constant current conditions. The relevant governing experiment parameters were varied independently; namely, the leading electrolyte concentration, trailing electrolyte concentration, and current. Through our experimental study, we have identified optimum conditions to achieve high preconcentration ratio and sample accumulation rates. Our approach to the theoretical problem and experimental study provides useful guidelines in optimizing parameters such as detector location, ITP duration, and electrolyte composition in ITP preconcentration and separation assays.
机译:我们介绍了通过峰模式等速电泳(ITP)对分析物进行预富集的理论和实验研究。我们对控制方程进行扰动分析,包括电迁移,扩散,缓冲反应和非线性离子强度效应。这种分析放宽了固有的数值刚度,并快速解决了瞬态样品演化问题。在此模型中,我们结合了半经验关系来捕获ITP接口内的色散现象。我们还提出了一种简单的,封闭形式的分析模型,该模型可确定控制峰值模式ITP中预浓缩动力学的关键参数。我们已经通过在恒定电流条件下进行的详细实验研究验证了我们的模型。相关的控制实验参数是独立变化的;即,前导电解质浓度,尾随电解质浓度和电流。通过我们的实验研究,我们确定了实现高预富集率和样品积累速率的最佳条件。我们针对理论问题和实验研究的方法为优化参数(如检测器位置,ITP持续时间和ITP预浓缩和分离测定中的电解质成分)提供了有用的指导。

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