Sniadecki Nathan J, Lee Cheng S, Sivanesan Ponniah, DeVoe Don L
Department of Mechanical Engineering, Bioengineering Program, University of Maryland, College Park, MD 20742, USA.
Anal Chem. 2004 Apr 1;76(7):1942-7. doi: 10.1021/ac034783t.
Microfluidic field-effect flow control (FEFC) modifies the zeta potential of electroosmotic flow using a transverse electric field applied through the microchannel wall. Previously demonstrated in silicon-based and glass microsystems, FEFC is presented here as an elegant method for flow control in polymer-based microfluidics with a simple and low-cost fabrication process. In addition to direct FEFC flow modulation, independent transverse electric fields in connected microchannels are demonstrated to produce a differential pumping rate between the microchannels. The different electroosmotic pumping rates formed by local zeta potential control induce an internal pressure at the microchannel intersection, resulting in hydrodynamic pumping through an interconnecting field-free microchannel. Modulation of the voltages applied to the gate electrodes adjusts the magnitude and direction of the bidirectional pressure pumping, with fine resolution volume flow rates from -2 to 2 nL/min in the field-free microchannel demonstrated.
微流控场效应流控(FEFC)通过施加穿过微通道壁的横向电场来改变电渗流的zeta电位。FEFC此前已在基于硅和玻璃的微系统中得到证明,本文将其作为一种用于基于聚合物的微流控中流控的简洁方法进行介绍,该方法具有简单且低成本的制造工艺。除了直接的FEFC流调制外,还证明了在相连微通道中的独立横向电场会在微通道之间产生不同的泵送速率。由局部zeta电位控制形成的不同电渗泵送速率会在微通道交叉处产生内部压力,从而导致流体通过无场互连微通道进行泵送。施加到栅电极上电压的调制可调整双向压力泵送的大小和方向,在无场微通道中展示了-2至2 nL/min的精细分辨率体积流速。