用电润湿驱动液滴:力和动力学

Droplet Pub Date : 2024-03-10 DOI:10.1002/dro2.108
Robert Hennig, Vito Cacucciolo, Herbert Shea
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引用次数: 0

摘要

电介质上的电润湿(EWOD)可实现液滴在光滑表面上的快速移动,应用范围从片上实验室设备到微型执行器。液滴上的平面内力是 EWOD 性能的关键指标。该力已被广泛建模,但很少有直接实验测量的报道。我们使用两种装置研究了 EWOD 对液滴的作用力,首次实现了同时测量作用力和接触角,同时以 6000 帧/秒的速度对液滴形状进行成像。对于几种液体和表面,我们观察到,力在电压约为 150 V 时达到饱和。施加高达 2 kV 的电压(比典型电压高 10 倍)也不会显著增加超过饱和点的力。不过,我们观察到,前接触线局部的瞬态动态并没有随着电压的升高而饱和。在较高电压下,初始前接触线速度继续增加,前接触角暂时接近于零,形成一层薄薄的液膜,并在液气界面形成毛细管波。当接触线的局部 EWOD 力超过毛细力时,就会形成弹射液滴。表面张力增大可使液滴受力增大,我们用汞来证明这一点。
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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Actuating droplets with electrowetting: Force and dynamics

Electrowetting on dielectric (EWOD) allows rapid movement of liquid droplets on a smooth surface, with applications ranging from lab-on-chip devices to micro-actuators. The in-plane force on a droplet is a key indicator of EWOD performance. This force has been extensively modeled but few direct experimental measurements are reported. We study the EWOD force on a droplet using two setups that allow, for the first time, the simultaneous measurement of force and contact angle, while imaging the droplet shape at 6000 frames/s. For several liquids and surfaces, we observe that the force saturates at a voltage of approximately 150 V. Application of voltages of up 2 kV, that is, 10 times higher than is typical, does not significantly increase forces beyond the saturation point. However, we observe that the transient dynamics, localized at the front contact line, do not show saturation with voltage. At the higher voltages, the initial front contact line speed continues to increase, the front contact angle temporarily becomes near zero, creating a thin liquid film, and capillary waves form at the liquid–air interface. When the localized EWOD forces at the contact line exceed the capillary forces, projectile droplets form. Increasing surface tension allows for higher droplet forces, which we demonstrate with mercury.

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CiteScore
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Issue Information Front Cover, Volume 3, Number 4, October 2024 Inside Back Cover, Volume 3, Number 4, October 2024 Back Cover, Volume 3, Number 4, October 2024 Inside Front Cover, Volume 3, Number 4, October 2024
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