Kale Akshay, Malekanfard Amirreza, Xuan Xiangchun
Electrical Engineering Division, CAPE Building, Department of Engineering, University of Cambridge, Cambridge CB3 0FA, UK.
Department of Mechanical Engineering, Clemson University, Clemson, SC 29634, USA.
Micromachines (Basel). 2020 Jul 21;11(7):707. doi: 10.3390/mi11070707.
Curvature-induced dielectrophoresis (C-iDEP) is an established method of applying electrical energy gradients across curved microchannels to obtain a label-free manipulation of particles and cells. This method offers several advantages over the other DEP-based methods, such as increased chip area utilisation, simple fabrication, reduced susceptibility to Joule heating and reduced risk of electrolysis in the active region. Although C-iDEP systems have been extensively demonstrated to achieve focusing and separation of particles, a detailed mathematical analysis of the particle dynamics has not been reported yet. This work computationally confirms a fully analytical dimensionless study of the electric field-induced particle motion inside a circular arc microchannel, the simplest design of a C-iDEP system. Specifically, the analysis reveals that the design of a circular arc microchannel geometry for manipulating particles using an applied voltage is fully determined by three dimensionless parameters. Simple equations are established and numerically confirmed to predict the mutual relationships of the parameters for a comprehensive range of their practically relevant values, while ensuring design for safety. This work aims to serve as a starting point for microfluidics engineers and researchers to have a simple calculator-based guideline to develop C-iDEP particle manipulation systems specific to their applications.
曲率诱导介电泳(C-iDEP)是一种在弯曲微通道上施加电能梯度以实现对颗粒和细胞进行无标记操控的既定方法。与其他基于介电泳的方法相比,该方法具有诸多优势,例如提高芯片面积利用率、制造简单、对焦耳热的敏感性降低以及有源区域电解风险降低。尽管C-iDEP系统已被广泛证明可实现颗粒的聚焦和分离,但尚未有关于颗粒动力学的详细数学分析报道。这项工作通过计算证实了对圆弧形微通道(C-iDEP系统最简单的设计)内电场诱导颗粒运动的完全解析无量纲研究。具体而言,分析表明,使用施加电压操控颗粒的圆弧形微通道几何结构设计完全由三个无量纲参数决定。建立了简单方程并通过数值验证,以预测这些参数在其实际相关值的广泛范围内的相互关系,同时确保安全设计。这项工作旨在为微流体工程师和研究人员提供一个基于简单计算器的指南,作为开发针对其应用的C-iDEP颗粒操控系统的起点。