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Optimizing Band Width and Resolution in Micro-Free Flow Electrophoresis

机译:微自由流电泳中的带宽和分辨率优化

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The broadening mechanisms for micro-free flow electrophoresis (mu-FFE) have been investigated using a van Deemter analysis. Separation power, the product of electric field and residence time, is presented as a parameter for predicting the position of sample streams and for comparing separations under different conditions. Band broadening in mu-FFE is governed by diffusion at lower linear velocities and a migration distance-dependent mechanism at higher linear velocities. At higher linear velocities, the parabolic flow profile is elongated, generating a distribution of analyte residence times in the separation channel. This distribution of residence times gives rise to a distribution of migration distances in the lateral direction since analytes spend different amounts of time in the electric field. Equations were derived to predict the effect of electric field and buffer flow rate on broadening. Experimental data were collected to determine whether the derived equations were useful in explaining broadening caused by diffusion and hydrodynamic flow at different linear velocities and electric fields. Overall there was an excellent correlation between the predicted and experimentally observed values allowing linear velocity and electric field to be optimized. Suppression of electroosmotic flow is proposed as a means of reducing mu-FFE band broadening due to hydrodynamic effects and maximizing resolution and peak capacity.
机译:使用van Deemter分析研究了微自由流动电泳(mu-FFE)的加宽机理。分离功率(电场和停留时间的乘积)作为预测样品流的位置并比较不同条件下分离的参数。 mu-FFE中的谱带展宽受较低线速度的扩散和较高线速度的迁移距离依赖机制的控制。在较高的线速度下,抛物线流动轮廓会延长,从而在分离通道中产生分析物停留时间的分布。由于分析物在电场中花费的时间不同,因此停留时间的这种分布会导致横向迁移距离的分布。推导出方程来预测电场和缓冲液流速对展宽的影响。收集实验数据以确定导出的方程式是否可用于解释在不同的线速度和电场下由扩散和流体动力流动引起的展宽。总体而言,预测值和实验值之间存在极好的相关性,从而可以优化线速度和电场。提出抑制电渗流作为减少由于水动力效应而引起的μ-FFE谱带展宽并最大程度地提高分离度和峰容量的方法。

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