Malinowski Robert, Parkin Ivan P, Volpe Giorgio
Department of Chemistry, University College London, 20 Gordon Street, London WC1H 0AJ, UK.
Sci Adv. 2020 Sep 30;6(40). doi: 10.1126/sciadv.aba3636. Print 2020 Sep.
Droplet motion on surfaces influences phenomena as diverse as microfluidic liquid handling, printing technology, and energy harvesting. Typically, droplets are set in motion by inducing energy gradients on a substrate or flow on their free surface. Current configurations for controllable droplet manipulation have limited applicability as they rely on carefully tailored wettability gradients and/or bespoke substrates. Here, we demonstrate the nonmonotonic contactless long-range manipulation of binary droplets on pristine substrates due to the sensing of localized water vapor sources. The droplet-source system presents an unexpected off-centered equilibrium position. We capture the underlying mechanism behind this symmetry breaking with a simplified model based on the full two-dimensional functional form of the surface tension gradient induced by the source on the droplet's free surface. This insight on the transport mechanism enables us to demonstrate its versatility for applications by printing, aligning, and reacting materials controllably in space and time on pristine substrates.
液滴在表面上的运动影响着诸如微流控液体处理、印刷技术和能量收集等多种现象。通常,液滴是通过在基底上诱导能量梯度或在其自由表面上产生流动来使其运动的。当前用于可控液滴操纵的配置适用性有限,因为它们依赖于精心定制的润湿性梯度和/或定制的基底。在此,我们展示了由于对局部水蒸气源的感应,在原始基底上对二元液滴进行非单调非接触远程操纵。液滴 - 源系统呈现出意想不到的偏心平衡位置。我们用一个基于源在液滴自由表面上引起的表面张力梯度的完整二维函数形式的简化模型,捕捉了这种对称性破缺背后的潜在机制。对传输机制的这一见解使我们能够通过在原始基底上可控地在空间和时间上进行材料的打印、对齐和反应,来展示其在应用中的多功能性。