Department of Mechanical Engineering, Clemson University, Clemson, South Carolina 29634, United States.
Department of Biological Sciences, Clemson University, Clemson, South Carolina 29634, United States.
Anal Chem. 2021 Apr 13;93(14):5947-5953. doi: 10.1021/acs.analchem.1c00697. Epub 2021 Apr 1.
It is often necessary to prefocus particles and cells into a tight stream for subsequent separation and/or analysis in microfluidic devices. A DC electric field has been widely used for particle and cell focusing in insulator-based dielectrophoretic (iDEP) microdevices, where a large field magnitude, a high constriction ratio, and/or a long microchannel are usually required to enhance the iDEP effect. We demonstrate, in this work, an AC iDEP focusing technique, which utilizes a low-frequency AC electric field to generate both an oscillatory electrokinetic flow of the particle/cell suspension and a field direction-independent dielectrophoretic force for particle/cell focusing in a virtually "infinite" microchannel. We also develop a theoretical analysis to evaluate this focusing in terms of the AC voltage frequency, amplitude, and particle size, which are each validated through both experimental demonstration and numerical simulation. The effectiveness of AC iDEP focusing increases with the second order of electric field magnitude, superior to DC iDEP focusing with only a first-order dependence. This feature and the "infinite" channel length together remove the necessity of large electric field and/or small constriction in DC iDEP focusing of small particles.
通常需要将颗粒和细胞预聚焦成紧密的流束,以便在微流控设备中进行后续的分离和/或分析。直流电场已广泛用于基于绝缘体的介电泳(iDEP)微器件中的颗粒和细胞聚焦,其中通常需要大的场强、高的收缩比和/或长的微通道来增强 iDEP 效应。在这项工作中,我们展示了一种交流 iDEP 聚焦技术,该技术利用低频交流电场产生颗粒/细胞悬浮液的振荡电动流,并产生与场方向无关的介电泳力,从而在实际上“无限”的微通道中实现颗粒/细胞聚焦。我们还开发了一种理论分析来评估这种聚焦与交流电压频率、幅度和颗粒尺寸的关系,通过实验演示和数值模拟对这些关系进行了验证。交流 iDEP 聚焦的有效性随电场强度的二阶增加,优于仅具有一阶依赖性的直流 iDEP 聚焦。这种特性和“无限”的通道长度一起消除了在小颗粒的直流 iDEP 聚焦中对大电场和/或小收缩的需求。