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用于利用直流电泳进行迁移率和zeta电位测量的最佳微机电系统(MEMS)器件。

Optimal MEMS device for mobility and zeta potential measurements using DC electrophoresis.

作者信息

Karam Pascal R, Dukhin Andrei, Pennathur Sumita

机构信息

Department of Mechanical Engineering, University of California, Santa Barbara, CA, USA.

Dispersion Technology Inc., Santa Barbara, CA, USA.

出版信息

Electrophoresis. 2017 May;38(9-10):1245-1250. doi: 10.1002/elps.201700029.

Abstract

We have developed a novel microchannel geometry that allows us to perform simple DC electrophoresis to measure the electrophoretic mobility and zeta potential of analytes and particles. In standard capillary geometries, mobility measurements using DC fields are difficult to perform. Specifically, measurements in open capillaries require knowledge of the hard to measure and often dynamic wall surface potential. Although measurements in closed capillaries eliminate this requirement, the measurements must be performed at infinitesimally small regions of zero flow where the pressure driven-flow completely cancels the electroosmotic flow (Komagata Planes). Furthermore, applied DC fields lead to electrode polarization, further questioning the reliability and accuracy of the measurement. In contrast, our geometry expands and moves the Komagata planes to where velocity gradients are at a minimum, and thus knowledge of the precise location of a Komagata plane is not necessary. Additionally, our microfluidic device prevents electrode polarization because of fluid recirculation around the electrodes. We fabricated our device using standard MEMS fabrication techniques and performed electrophoretic mobility measurements on 500 nm fluorescently tagged polystyrene particles at various buffer concentrations. Results are comparable to two different commercial dynamic light scattering based particle sizing instruments. We conclude with guidelines to further develop this robust electrophoretic tool that allows for facile and efficient particle characterization.

摘要

我们开发了一种新型微通道几何结构,它使我们能够进行简单的直流电泳,以测量分析物和颗粒的电泳迁移率和zeta电位。在标准毛细管几何结构中,使用直流电场进行迁移率测量很难实现。具体而言,在开放毛细管中的测量需要了解难以测量且通常是动态的壁面表面电位。虽然在封闭毛细管中的测量消除了这一要求,但测量必须在零流的极小区域进行,在该区域压力驱动流完全抵消电渗流(小诸平面)。此外,施加的直流电场会导致电极极化,这进一步质疑了测量的可靠性和准确性。相比之下,我们的几何结构将小诸平面扩展并移动到速度梯度最小的位置,因此无需了解小诸平面的确切位置。此外,我们的微流控装置由于电极周围的流体再循环而防止电极极化。我们使用标准的微机电系统制造技术制造了我们的装置,并在不同缓冲液浓度下对500纳米荧光标记的聚苯乙烯颗粒进行了电泳迁移率测量。结果与两种不同的基于商业动态光散射的颗粒尺寸测量仪器相当。我们最后给出了进一步开发这种强大的电泳工具的指导方针,该工具能够轻松、高效地进行颗粒表征。

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