Department of Biomedical Sciences, City University of Hong Kong, Kowloon, Hong Kong SAR, People's Republic of China.
Physics of Complex Fluids, University of Twente, 7500 Enschede, The Netherlands.
Proc Natl Acad Sci U S A. 2019 Feb 12;116(7):2482-2487. doi: 10.1073/pnas.1817172116. Epub 2019 Jan 28.
Transporting water and oil microdroplets is important for applications ranging from water harvesting to biomedical analysis but remains a great challenge. This is due to the amplified contact angle hysteresis and insufficient driving force in the micrometer scale, especially for low-surface energy oil droplets. Coalescence of neighboring droplets, which releases vast additional surface energy, was often required, but its relatively uncontrollable nature brings uncertainties to the droplet motion, and the methodology is not applicable to single droplets. Here we introduce a strategy based on slippery surface with immobilized lubricant menisci to directionally transport microdroplets. By simply mounting hydrogel dots on slippery surface, the raised menisci remotely pump microdroplets via capillary force with high efficiency, regardless of droplet size or surface energy. By proof-of-concept experiments, we demonstrate that our method allows for highly efficient water droplet collection and highly sensitive biomedical analyte detection.
输送水和油微滴对于从水收集到生物医学分析等应用非常重要,但仍然是一个巨大的挑战。这是由于在微米尺度下接触角滞后和驱动力放大,特别是对于低表面能油滴。通常需要相邻液滴的合并,这会释放出大量额外的表面能,但它相对不可控的性质给液滴运动带来了不确定性,而且该方法不适用于单个液滴。在这里,我们介绍了一种基于固定润滑弯月面的滑润表面策略,以定向输送微滴。通过简单地将水凝胶点安装在滑润表面上,凸起的弯月面可以通过毛细作用力高效地远程泵送微滴,而与液滴尺寸或表面能无关。通过概念验证实验,我们证明我们的方法允许高效地收集水滴和高度灵敏的生物医学分析物检测。