Cui Hai-Hang, Voldman Joel, He Xue-Fei, Lim Kian-Meng
Singapore-MIT Alliance, National University of Singapore, 4 Engineering Drive 3, 117576, Singapore.
Lab Chip. 2009 Aug 21;9(16):2306-12. doi: 10.1039/b906202e. Epub 2009 Jun 29.
In this paper, we introduce a dielectrophoresis (DEP)-based separation method that allows for tunable multiplex separation of particles. In traditional DEP separations where the field is applied continuously, size-based separation of particles uses the cubic dependence of the DEP force on particle radius, causing large particles to be retained while small particles are released. Here we show that by pulsing the DEP force in time, we are able to reverse the order of separation (eluting the large particles while retaining the small ones), and even extract mid-size particles from a heterogeneous population in one step. The operation is reminiscent of prior dielectrophoretic ratchets which made use of DEP and Brownian motion, but we have applied the asymmetric forces in time rather than in a spatial arrangement of electrodes, thus simplifying the system. We present an analytical model to study the dynamic behavior of particles under pulsed DEP and to understand the different modes of separation. Results from the model and the experimental observations are shown to be in agreement.
在本文中,我们介绍了一种基于介电泳(DEP)的分离方法,该方法可实现对颗粒的可调谐多重分离。在传统的连续施加电场的DEP分离中,基于尺寸的颗粒分离利用了DEP力与颗粒半径的立方关系,导致大颗粒被保留而小颗粒被释放。在此我们表明,通过对DEP力进行脉冲处理,我们能够颠倒分离顺序(洗脱大颗粒而保留小颗粒),甚至能一步从异质群体中提取中等尺寸的颗粒。该操作让人联想到先前利用DEP和布朗运动的介电泳棘轮,但我们是在时间上而非电极的空间排列中施加不对称力,从而简化了系统。我们提出了一个分析模型来研究脉冲DEP作用下颗粒的动态行为,并理解不同的分离模式。模型结果与实验观察结果相符。