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Electrically Controllable Microparticle Synthesis and Digital Microfluidic Manipulation by Electric-Field-Induced Droplet Dispensing into Immiscible Fluids

机译:电场诱导的液滴分配到不混溶流体中的电控微粒合成和数字微流控

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摘要

The dispensing of tiny droplets is a basic and crucial process in a myriad of applications, such as DNA/protein microarray, cell cultures, chemical synthesis of microparticles, and digital microfluidics. This work systematically demonstrates droplet dispensing into immiscible fluids through electric charge concentration (ECC) method. It exhibits three main modes (i.e., attaching, uniform, and bursting modes) as a function of flow rates, applied voltages, and gap distances between the nozzle and the oil surface. Through a conventional nozzle with diameter of a few millimeters, charged droplets with volumes ranging from a few μL to a few tens of nL can be uniformly dispensed into the oil chamber without reduction in nozzle size. Based on the features of the proposed method (e.g., formation of droplets with controllable polarity and amount of electric charge in water and oil system), a simple and straightforward method is developed for microparticle synthesis, including preparation of colloidosomes and fabrication of Janus microparticles with anisotropic internal structures. Finally, a combined system consisting of ECC-induced droplet dispensing and electrophoresis of charged droplet (ECD)-driven manipulation systems is constructed. This integrated platform will provide increased utility and flexibility in microfluidic applications because a charged droplet can be delivered toward the intended position by programmable electric control.
机译:在众多应用中,如DNA /蛋白质微阵列,细胞培养,微粒的化学合成和数字微流控技术,微小液滴的分配是一个基本且至关重要的过程。这项工作系统地演示了通过电荷浓缩(ECC)方法将液滴分配到不混溶的流体中。它根据流量,施加的电压和喷嘴与油面之间的间隙距离而呈现出三种主要模式(即附着,均匀和破裂模式)。通过直径为几毫米的常规喷嘴,可以将体积范围从几微升到几十nL的带电液滴均匀地分配到油室中,而不会减小喷嘴尺寸。根据所提出方法的特征(例如,在水和油系统中形成极性可控的液滴和电荷量),开发了一种简单直接的方法来进行微粒合成,包括胶体的制备和Janus微粒的制备。各向异性的内部结构。最后,构建了一个由ECC诱导的液滴分配和带电液滴电泳(ECD)驱动的操纵系统组成的组合系统。该集成平台将在微流体应用中提供更高的实用性和灵活性,因为带电的液滴可以通过可编程的电控方式输送到预定位置。

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