Kleinert Jairus, Srinivasan Vijay, Rival Arnaud, Delattre Cyril, Velev Orlin D, Pamula Vamsee K
Advanced Liquid Logic, Inc., PO Box 14025, Research Triangle Park , North Carolina 27709, USA.
Advanced Liquid Logic France , MINATEC - BHT - Bat 52, 7 parvis Louis Néel, 38000 Grenoble, France.
Biomicrofluidics. 2015 May 19;9(3):034104. doi: 10.1063/1.4921489. eCollection 2015 May.
The operation of digital microfluidic devices with water droplets manipulated by electrowetting is critically dependent on the static and dynamic stability and lubrication properties of the oil films that separate the droplets from the solid surfaces. The factors determining the stability of the films and preventing surface fouling in such systems are not yet thoroughly understood and were experimentally investigated in this study. The experiments were performed using a standard digital microfluidic cartridge in which water droplets enclosed in a thin, oil-filled gap were transported over an array of electrodes. Stable, continuous oil films separated the droplets from the surfaces when the droplets were stationary. During droplet transport, capillary waves formed in the films on the electrode surfaces as the oil menisci receded. The waves evolved into dome-shaped oil lenses. Droplet deformation and oil displacement caused the films at the surface opposite the electrode array to transform into dimples of oil trapped over the centers of the droplets. Lower actuation voltages were associated with slower film thinning and formation of fewer, but larger, oil lenses. Lower ac frequencies induced oscillations in the droplets that caused the films to rupture. Films were also destabilized by addition of surfactants to the oil or droplet phases. Such a comprehensive understanding of the oil film behavior will enable more robust electrowetting-actuated lab-on-a-chip devices through prevention of loss of species from droplets and contamination of surfaces at points where films may break.
通过电润湿操控水滴的数字微流控设备的运行,严重依赖于将水滴与固体表面隔开的油膜的静态和动态稳定性以及润滑特性。在这类系统中,决定油膜稳定性并防止表面污染的因素尚未被彻底了解,本研究对此进行了实验探究。实验使用了一个标准的数字微流控芯片盒,其中包裹在薄的、充满油的间隙中的水滴在一系列电极上传输。当水滴静止时,稳定、连续的油膜将水滴与表面隔开。在水滴传输过程中,随着油弯月面后退,电极表面的油膜中会形成毛细波。这些波会演变成圆顶形的油透镜。水滴变形和油的位移导致电极阵列对面表面的油膜变成被困在水滴中心上方的油凹坑。较低的驱动电压与较慢的油膜变薄以及形成较少但较大的油透镜有关。较低的交流频率会引起水滴振荡,导致油膜破裂。向油相或水滴相中添加表面活性剂也会使油膜不稳定。对油膜行为的这种全面理解将通过防止水滴中的物质损失以及在油膜可能破裂的点处防止表面污染,实现更稳健的电润湿驱动的芯片实验室设备。