Microfluidics Group, Laboratory of Geophysical and Industrial Fluid Flows (LEGI), University of Grenoble, 38041 Grenoble, France.
Langmuir. 2012 Jan 10;28(1):1041-8. doi: 10.1021/la203645t. Epub 2011 Nov 29.
This paper addresses a method to estimate the size of a sessile drop and to measure its evaporation kinetics by making use of both Michelson interferometry and coplanar electrowetting. From a high-frequency electrowetting voltage, the contact angle of the sessile droplet is monitored to permanently obtain a half-liquid sphere, thus complying perfectly with the drop evaporation theory based on a constant contact angle (Bexon, R.; Picknett, R. J. Colloid Interface Sci. 1977, 61, 336-350). Low-frequency modulation of the electrowetting actuation is also applied to cause droplet shape oscillations and capillary resonance. Interferometry allows us to measure a time-dependent capillary spectrum and, in particular, the shift in natural frequencies induced by drop evaporation. Consequently, diffusive kinetics of drop evaporation can be properly estimated, as demonstrated. Because of coplanar electrode configuration, our methodology can be integrated in open and covered microsystems, such as digital lab-on-a-chip devices.
本文提出了一种通过迈克尔逊干涉仪和共面电润湿来估计固着液滴尺寸并测量其蒸发动力学的方法。利用高频电润湿电压,监测固着液滴的接触角,以永久性地获得半液球,从而完全符合基于恒定接触角的液滴蒸发理论(Bexon,R.;Picknett,R. J. Colloid Interface Sci. 1977,61,336-350)。低频调制电润湿致动也会引起液滴形状的振荡和毛细共振。干涉法允许我们测量随时间变化的毛细谱,特别是由液滴蒸发引起的自然频率的移动。因此,如所证明的,可以正确估计液滴蒸发的扩散动力学。由于共面电极配置,我们的方法可以集成在开放式和封闭式微系统中,例如数字片上实验室设备。