Department of Engineering Mechanics and Center for Nano and Micro Mechanics, AML, Tsinghua University, Beijing, 100084, China.
National Key Laboratory of Science and Technology on Micro/Nano Fabrication, Institute of Microelectronics, Peking University, Beijing, 100871, China.
Nat Commun. 2022 May 13;13(1):2685. doi: 10.1038/s41467-022-30399-0.
Understanding the interactions between liquids and solids is important for many areas of science and technology. Microtextured surfaces have been extensively studied in microfluidics, DNA technologies, and micro-manufacturing. For these applications, the ability to precisely control the shape, size and location of the liquid via textured surfaces is of particular importance for the design of fluidic-based systems. However, this has been passively realized in the wetting state thanks to the pinning of the contact line, leaving the non-wetting counterpart challenging due to the low liquid affinity. In this work, confinement is imposed on droplets located on well-designed shapes and arrangements of microtextured surfaces. An active way to shape non-wetting water and liquid metal droplets into various polygons ranging from triangles, squares, rectangles, to hexagons is developed. The results suggest that energy barriers in different directions account for the movement of the contact lines and the formation of polygonal shapes. By characterizing the curvature of the liquid-vapour meniscus, the morphology of the droplet is correlated to its volume, thickness, and contact angle. The developed liquid-based patterning strategy under active regulation with low adhesion looks promising for low-cost micromanufacturing technology, DNA microarrays, and digital lab-on-a-chip.
理解液体和固体之间的相互作用对于许多科学和技术领域都很重要。微纹理表面在微流控、DNA 技术和微制造等领域得到了广泛的研究。对于这些应用,通过纹理表面精确控制液体的形状、大小和位置的能力对于基于流体的系统的设计尤为重要。然而,由于接触线的固定,在润湿状态下这已经被动地实现了,而由于低液体亲和力,非润湿状态则具有挑战性。在这项工作中,将限制施加于位于设计良好的微纹理表面的形状和排列上的液滴。开发了一种主动的方法,可以将非润湿的水和液态金属液滴塑造成各种多边形,包括三角形、正方形、长方形和六边形。结果表明,不同方向的能量障碍解释了接触线的移动和多边形形状的形成。通过表征液-气弯月面的曲率,可以将液滴的形态与其体积、厚度和接触角相关联。在低附着力的主动调控下开发的基于液体的图案化策略对于低成本微制造技术、DNA 微阵列和数字片上实验室具有广阔的应用前景。