Dutta Debashis
Department of Chemistry, University of Wyoming, Laramie, WY, USA.
Electrophoresis. 2018 Mar;39(5-6):760-769. doi: 10.1002/elps.201700307. Epub 2017 Dec 11.
The use of an electric field in free-flow zone electrophoresis (FFZE) automatically leads to Joule heating yielding a higher temperature at the center of the separation chamber relative to that around the channel walls. For small amounts of heat generated, this thermal effect introduces a variation in the equilibrium position of the analyte molecules due to the dependence of liquid viscosity and analyte diffusivity on temperature leading to a modification in the position of the analyte stream as well as the zone width. In this article, an analytic theory is presented to quantitate such effects of Joule heating on FFZE assays in the limit of small temperature differentials across the channel gap yielding a closed form expression for the stream position and zone variance under equilibrium conditions. A method-of-moments approach is employed to develop this analytic theory, which is further validated with numerical solutions of the governing equations. Interestingly, the noted analyses predict that Joule heating can drift the location of the analyte stream either way of its equilibrium position realized in the absence of any temperature rise in the system, and also tends to reduce zone dispersion. The extent of these modifications, however, is governed by the electric field induced temperature rise and three Péclet numbers evaluated based on the axial pressure-driven flow, transverse electroosmotic and electrophoretic solute velocities in the separation chamber. Monte Carlo simulations of the FFZE system further establish a time and a length scale over which the results from the analytic theory are valid.
在自由流区带电泳(FFZE)中使用电场会自动导致焦耳热,使得分离室中心的温度相对于通道壁周围的温度更高。对于产生的少量热量,这种热效应会由于液体粘度和分析物扩散率对温度的依赖性而导致分析物分子平衡位置发生变化,进而导致分析物流位置以及区带宽度的改变。在本文中,提出了一种解析理论,用于在通道间隙上温差较小的极限情况下定量焦耳热对FFZE分析的此类影响,从而得到平衡条件下物流位置和区带方差的闭式表达式。采用矩量法来发展这一解析理论,并通过控制方程的数值解进一步验证。有趣的是,上述分析预测,焦耳热可以使分析物流的位置向系统无温度升高时所实现的平衡位置的任意方向漂移,并且还倾向于减小区带分散。然而,这些变化的程度由电场引起的温度升高以及基于分离室中的轴向压力驱动流、横向电渗和电泳溶质速度评估的三个佩克莱数决定。FFZE系统的蒙特卡罗模拟进一步确定了解析理论结果有效的时间和长度尺度。