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两组件液滴中的蒸气介导传感和运动。

Vapour-mediated sensing and motility in two-component droplets.

机构信息

Department of Bioengineering, Stanford University, 450 Serra Mall, California 94305, USA.

出版信息

Nature. 2015 Mar 26;519(7544):446-50. doi: 10.1038/nature14272. Epub 2015 Mar 11.

Abstract

Controlling the wetting behaviour of liquids on surfaces is important for a variety of industrial applications such as water-repellent coatings and lubrication. Liquid behaviour on a surface can range from complete spreading, as in the 'tears of wine' effect, to minimal wetting as observed on a superhydrophobic lotus leaf. Controlling droplet movement is important in microfluidic liquid handling, on self-cleaning surfaces and in heat transfer. Droplet motion can be achieved by gradients of surface energy. However, existing techniques require either a large gradient or a carefully prepared surface to overcome the effects of contact line pinning, which usually limit droplet motion. Here we show that two-component droplets of well-chosen miscible liquids such as propylene glycol and water deposited on clean glass are not subject to pinning and cause the motion of neighbouring droplets over a distance. Unlike the canonical predictions for these liquids on a high-energy surface, these droplets do not spread completely but exhibit an apparent contact angle. We demonstrate experimentally and analytically that these droplets are stabilized by evaporation-induced surface tension gradients and that they move in response to the vapour emitted by neighbouring droplets. Our fundamental understanding of this robust system enabled us to construct a wide variety of autonomous fluidic machines out of everyday materials.

摘要

控制液体在表面的润湿行为对于各种工业应用非常重要,例如防水涂层和润滑。液体在表面上的行为范围从完全铺展(如“葡萄酒泪”效应)到超疏水荷叶上观察到的最小润湿。控制液滴的运动对于微流控液体处理、自清洁表面和传热非常重要。可以通过表面能梯度来实现液滴运动。然而,现有的技术要么需要大的梯度,要么需要精心准备的表面来克服接触线钉扎的影响,而接触线钉扎通常会限制液滴的运动。在这里,我们表明,沉积在清洁玻璃上的选择良好的可混溶液体(如丙二醇和水)的两组件液滴不受钉扎的影响,并导致相邻液滴在一定距离上运动。与高能表面上这些液体的典型预测不同,这些液滴不会完全铺展,而是表现出明显的接触角。我们通过实验和分析证明,这些液滴是通过蒸发引起的表面张力梯度稳定的,并且它们会响应相邻液滴释放的蒸气而移动。我们对这个强大系统的基本理解使我们能够用日常材料构建各种各样的自主流体机器。

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