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微液滴棱镜的电润湿驱动动力学。

Dynamics of a microliquid prism actuated by electrowetting.

机构信息

School of Mechanical and Aerospace Engineering, Seoul National University, Seoul 151-744, Korea.

出版信息

Lab Chip. 2013 Jan 21;13(2):274-9. doi: 10.1039/c2lc41024a. Epub 2012 Nov 19.

Abstract

A microliquid prism is a microchannel filled with two immiscible liquids, whose interface acts as a refractive surface. To steer a light beam that constructs optical images, the interface profile or the contact angle is modulated through electrowetting on a dielectric. Accurate, yet agile actuation of the liquid prism critically depends on the understanding of dynamics of the fluid interface. Here we fabricate liquid prisms, visualize the shape evolution of the interface, and theoretically model its dynamics. By comparing the magnitude of capillary forces to those of viscous, inertial and hydrostatic forces, we find that the meniscus motion within submillimetric channels is dominated by the capillary effect. The theoretical predictions for microscale meniscus dynamics are shown to agree well with the experimental measurements. We then discuss the formation of waves in millimetric liquid prisms, which may significantly limit fast and reliable operation of the optofluidic device.

摘要

微液棱镜是充满两种不混溶液体的微通道,其界面充当折射面。为了控制构建光学图像的光束,通过介电质上的电润湿来调制界面轮廓或接触角。液体棱镜的精确、灵活致动关键取决于对流体界面动力学的理解。在这里,我们制作了液体棱镜,观察了界面的形状演变,并从理论上对其动力学进行了建模。通过比较毛细力与粘性力、惯性力和静水力的大小,我们发现亚毫米通道内的弯月面运动主要受毛细效应控制。微尺度弯月面动力学的理论预测与实验测量结果吻合较好。然后,我们讨论了毫米级液体棱镜中波的形成,这可能会显著限制光流控器件的快速可靠运行。

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