首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >Unsteady transport phenomena in free-flow electrophoresis - prerequisite of ultrafast sample cleaning in microfluidic devices.
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Unsteady transport phenomena in free-flow electrophoresis - prerequisite of ultrafast sample cleaning in microfluidic devices.

机译:自由流动电泳中的不稳定运输现象-微流体设备中超快速样品清洁的前提。

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摘要

The evolution partial differential equations describing the transport processes induced by hydrodynamic flow in free-flow electrophoresis (FFE) are solved by the generalized dispersion theory. Our theoretical analysis demonstrates that the central injection of solutes into a relatively fast hydrodynamic flow enables to transport them to the channel outlet well before they are spread through the width of the channel and their migration is negatively affected by a contact with walls. In this case, the axial zone spreading decreases by increasing the linear velocity of hydrodynamic flow. The resulting dependencies of convective and dispersion coefficients on the velocity of flow and parameters of the separation channel show the optimum separation conditions with respect to resolution and analysis time. Due to the unsteady character of transport processes, effective FFE separations can potentially be performed in a microfluidic device in seconds. This is a reasonable time to separate low-molecular mass impurities in the electric field. Thus, a fast and efficient sample cleaning before subsequent analysis by electrospray ionization-mass spectrometry (ESI-MS) or another separation method can be performed.
机译:用广义弥散理论求解了描述偏流方程的演化偏微分方程,该方程由自由流动电泳法(FFE)中的流体动力流引起。我们的理论分析表明,将溶质集中注入到相对较快的流体动力流中,可以在将溶质散布到整个通道宽度之前将其很好地运输到通道出口,并且其迁移受到与壁接触的负面影响。在这种情况下,轴向区域扩展通过增加流体动力流的线速度而减小。对流系数和弥散系数对流速和分离通道参数的依赖性显示出相对于分离度和分析时间的最佳分离条件。由于运输过程的不稳定特性,有效的FFE分离可能会在几秒钟内在微流体装置中进行。这是在电场中分离低分子量杂质的合理时间。因此,可以在通过电喷雾电离质谱(ESI-MS)或其他分离方法进行后续分析之前进行快速有效的样品清洁。

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