Field-effect flow control in polymer microchannel networks

N. Sniadecki, C.S. Lee, M. Beamesderfer, D. DeVoe
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引用次数: 4

Abstract

A new method for dynamic modulation of electro-osmotic flow (EOF) in plastic microchannel networks has been developed. The method employs field-effect flow control (FEFC) to adjust the zeta potential at the microchannel wall simply by biasing a gate electrode separated from the flow channel by a dielectric Parylene C film. The utility of this method is demonstrated by generating induced pressure-driven flow created by a differential EOF pumping rate. By varying the voltages applied to the FEFC gate electrodes in two microchannels at a T-intersection, the induced pressure at the intersection generates pumping in the connected third, field-free microchannel. The FEFC gate electrodes are able to change the magnitude and direction of the pressure pumping by inducing either a negative or positive pressure at the intersection. The flow velocity is tracked by neutralized fluorescent microbeads in the microchannels. The method described here provides an elegant mechanism for flow control in complex plastic microchannel networks. Furthermore, the ability to induce pumping by differential EOF provides important benefits for applications where zero electric fields must be maintained in the main flow channel, for example for example in the presence of high ionic mobility solutions.
聚合物微通道网络中的场效应流动控制
提出了一种塑料微通道网络中电渗透流动态调制的新方法。该方法采用场效应流动控制(FEFC),通过偏压一个被介电聚苯二烯C膜与流道隔开的栅电极来调节微通道壁上的zeta电位。通过不同EOF泵送速率产生的诱导压力驱动流,证明了该方法的实用性。通过改变施加在两个微通道中t形交集处的FEFC栅极电极上的电压,交集处的感应压力会在连接的第三个无场微通道中产生泵送。FEFC栅极能够通过在交叉处诱导负压或正压来改变压力泵送的大小和方向。通过微通道中的中和荧光微珠来跟踪流速。本文描述的方法为复杂塑料微通道网络中的流量控制提供了一种优雅的机制。此外,通过差分EOF诱导泵送的能力为必须在主流通道中保持零电场的应用提供了重要的好处,例如在高离子迁移率溶液存在的情况下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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