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On the Bipolar DC Flow Field-Effect-Transistor for Multifunctional Sample Handing in Microfluidics: A Theoretical Analysis under the Debye–Huckel Limit

机译:用于微流体中多功能样品处理的双极直流流场效应晶体管:德拜-哈克尔极限下的理论分析

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摘要

We present herein a novel method of bipolar field-effect control on DC electroosmosis (DCEO) from a physical point of view, in the context of an intelligent and robust operation tool for stratified laminar streams in microscale systems. In this unique design of the DC flow field-effect-transistor (DC-FFET), a pair of face-to-face external gate terminals are imposed with opposite gate-voltage polarities. Diffuse-charge dynamics induces heteropolar Debye screening charge within the diffuse double layer adjacent to the face-to-face oppositely-polarized gates, respectively. A background electric field is applied across the source-drain terminal and forces the face-to-face counterionic charge of reversed polarities into induced-charge electroosmotic (ICEO) vortex flow in the lateral direction. The chaotic turbulence of the transverse ICEO whirlpool interacts actively with the conventional plug flow of DCEO, giving rise to twisted streamlines for simultaneous DCEO pumping and ICEO mixing of fluid samples along the channel length direction. A mathematical model in thin-layer approximation and the low-voltage limit is subsequently established to test the feasibility of the bipolar DC-FFET configuration in electrokinetic manipulation of fluids at the micrometer dimension. According to our simulation analysis, an integrated device design with two sets of side-by-side, but upside-down gate electrode pair exhibits outstanding performance in electroconvective pumping and mixing even without any externally-applied pressure difference. Moreover, a paradigm of a microdevice for fully electrokinetics-driven analyte treatment is established with an array of reversed bipolar gate-terminal pairs arranged on top of the dielectric membrane along the channel length direction, from which we can obtain almost a perfect liquid mixture by using a smaller magnitude of gate voltages for causing less detrimental effects at a small Dukhin number. Sustained by theoretical analysis, our physical demonstration on bipolar field-effect flow control for the microfluidic device of dual functionalities in simultaneous electroconvective pumping and mixing holds great potential in the development of fully-automated liquid-phase actuators in modern microfluidic systems.
机译:我们从物理的角度,在智能和鲁棒的操作工具在分层系统中分层层流的上下文中,提出了一种从物理角度对直流电渗(DCEO)进行双极场效应控制的新方法。在这种独特的直流流场效应晶体管(DC-FFET)设计中,一对面对面的外部栅极端子施加了相反的栅极电压极性。扩散电荷动力学分别在与面对面的相反极化栅极相邻的扩散双层中感应出异质德拜屏蔽电荷。在源极-漏极端子之间施加背景电场,并迫使反极性的面对面反离子电荷沿横向方向进入感应电荷电渗(ICEO)涡流。横向ICEO涡流的混沌湍流与DCEO的常规旋塞流活跃地相互作用,产生扭曲的流线,用于沿通道长度方向同时进行DCEO泵送和流体样本的ICEO混合。随后建立薄层近似和低电压极限的数学模型,以测试双极DC-FFET配置在微米尺寸的流体的电动控制中的可行性。根据我们的仿真分析,具有两组并排但上下颠倒的栅电极对的集成器件设计即使在没有任何外部施加的压差的情况下,也具有出色的电对流泵送和混合性能。此外,通过沿通道长度方向排列在介电膜顶部的反向双极栅极-端子对阵列,建立了用于完全电动驱动的分析物处理的微设备范例,我们可以通过以下方法获得几乎完美的液体混合物:在较小的Dukhin数下,使用较小量的栅极电压可产生较小的有害影响。在理论分析的支持下,我们对同时电对流泵送和混合的双重功能微流体装置的双极场效应流控制的物理演示,在现代微流体系统中全自动液相致动器的开发中具有巨大的潜力。

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