't Mannetje Dieter, Ghosh Somnath, Lagraauw Rudy, Otten Simon, Pit Arjen, Berendsen Christian, Zeegers Jos, van den Ende Dirk, Mugele Frieder
University of Twente, MESA+ Institute for Nanotechnology, Physics of Complex Fluids, PO Box 217, 7500 AE Enschede, The Netherlands.
Department of Applied Physics, Mesoscopic Transport Properties Group, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands.
Nat Commun. 2014 Apr 11;5:3559. doi: 10.1038/ncomms4559.
Controlling the motion of drops on solid surfaces is crucial in many natural phenomena and technological processes including the collection and removal of rain drops, cleaning technology and heat exchangers. Topographic and chemical heterogeneities on solid surfaces give rise to pinning forces that can capture and steer drops in desired directions. Here we determine general physical conditions required for capturing sliding drops on an inclined plane that is equipped with electrically tunable wetting defects. By mapping the drop dynamics on the one-dimensional motion of a point mass, we demonstrate that the trapping process is controlled by two dimensionless parameters, the trapping strength measured in units of the driving force and the ratio between a viscous and an inertial time scale. Complementary experiments involving superhydrophobic surfaces with wetting defects demonstrate the general applicability of the concept. Moreover, we show that electrically tunable defects can be used to guide sliding drops along actively switchable tracks-with potential applications in microfluidics.
在包括雨滴的收集与去除、清洁技术和热交换器在内的许多自然现象和技术过程中,控制液滴在固体表面的运动至关重要。固体表面的形貌和化学不均匀性会产生钉扎力,该力能够捕获液滴并将其引导至所需方向。在此,我们确定了在配备电可调润湿性缺陷的倾斜平面上捕获滑动液滴所需的一般物理条件。通过将液滴动力学映射到质点的一维运动上,我们证明捕获过程由两个无量纲参数控制,即以驱动力为单位测量的捕获强度以及粘性时间尺度与惯性时间尺度之比。涉及具有润湿性缺陷的超疏水表面的补充实验证明了该概念的普遍适用性。此外,我们表明电可调缺陷可用于沿着可主动切换的轨迹引导滑动液滴,这在微流体领域具有潜在应用。