Department of Mechanical and Mechatronics Engineering , University of Waterloo , Waterloo , Ontario N2L 3G1 , Canada.
ACS Appl Mater Interfaces. 2018 Oct 24;10(42):36572-36581. doi: 10.1021/acsami.8b14430. Epub 2018 Oct 15.
A novel ac-dielectrophoretic (DEP) device for tunable manipulation and characterization of particles and droplets is presented in this work. To induce DEP forces, the ac electric field is applied via two embedded microelectrodes to generate a local nonuniform electric field perpendicular to the channel length through a pair of asymmetric orifices on the opposite microchannel walls. The droplets experience the DEP effects only when passing through the vicinity of the small orifice, where the strongest gradient of the nonuniform electric field exists. In this study, the ac-DEP manipulation of the particles in the microchannel under different strengths of electrical field was demonstrated first. Then, the separation of particles by size, separation of mixtures of ionic liquid (IL) droplets and oil droplets with the same size by types, and movement of the particles and IL droplets with different frequencies of the applied ac electric field were investigated, respectively. The experimental results match well with the theoretical simulation. In addition, the lateral migration of an IL droplet as a function of the ac frequency was measured, which shows a trend similar to the corresponding Clausius-Mossotti factor. The experimental results demonstrate that with this method, the separation of target particles/droplets with specific size and type can be accomplished by simply adjusting the strength and the frequency of the ac field applied to the microchannels. This paper, for the first time, measured the ac-DEP lateral migration of the particles and IL-in-water emulsion droplets varying with the frequency of the applied ac electric field in the microfluidic chip, providing a method to identify the critical frequency of the droplet and the fingerprint to characterize the droplet.
本文提出了一种新颖的 ac 介电泳(DEP)装置,用于对粒子和液滴进行可调谐操作和特性分析。为了产生 DEP 力,通过微通道壁上相对的一对不对称孔,将交流电场施加到两个嵌入式微电极上,在通道长度方向上产生一个局部非均匀电场。当液滴通过小孔附近时,仅会受到 DEP 效应的影响,此时非均匀电场的强度梯度最大。在这项研究中,首先展示了在不同电场强度下微通道中粒子的 ac-DEP 操作。然后,分别研究了通过尺寸分离粒子、通过类型分离具有相同尺寸的离子液体(IL)液滴和油滴的混合物、以及通过施加交流电场的不同频率来移动粒子和 IL 液滴。实验结果与理论模拟吻合良好。此外,还测量了作为交流频率函数的 IL 液滴的横向迁移,其表现出与相应的 Clausius-Mossotti 因子相似的趋势。实验结果表明,通过这种方法,可以通过简单地调整施加到微通道的交流场的强度和频率来完成具有特定尺寸和类型的目标粒子/液滴的分离。本文首次在微流控芯片中测量了随交流电场频率变化的粒子和 IL-水乳液液滴的 ac-DEP 横向迁移,为识别液滴的临界频率和特征指纹提供了一种方法。