Ministry of Education Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei University, Wuhan, People's Republic of China; State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou, People's Republic of China.
State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou, People's Republic of China.
J Colloid Interface Sci. 2021 Dec 15;604:526-536. doi: 10.1016/j.jcis.2021.07.033. Epub 2021 Jul 10.
The droplet manipulation behavior is affected by chemical structural driving force (including the superposition of electric, magnetic, optical and thermal fields), which directly determine transportation velocity. A lot of research has focused on a single driving force that induces the directional transportation behavior, which affects its performance.
A simple method for preparing wettability gradient conical copper needles (WGCCN) combining structural gradient and chemical gradient was formulated. The effect of droplet volume and tilt angles on droplet transport velocity was systematically studied. The process of droplet transport was revealed through theoretical model and mechanical analysis. Finally, the application of WGCCN and its array model in fog collection were explored.
A continuous chemical gradient in the conical structure gradient induces the droplet directional transportation, and the transportation velocity depends on the droplet volume. In addition, under the cooperation effect of multiple driving force, the droplet can still be transported in a directional orientation even if it is tilted at a certain angle. The simple droplet manipulation behavior portends that the droplets directional transport behavior can be applied in microfluidic manipulation by cooperation of effective multiple driving force with satisfactory results.
液滴的操控行为受化学结构驱动力(包括电、磁、光和热场的叠加)的影响,这些驱动力直接决定了输运速度。大量研究集中在单一驱动力对定向输运行为的影响上,这会影响其性能。
提出了一种结合结构梯度和化学梯度的简单方法来制备润湿性梯度锥形铜针(WGCCN)。系统研究了液滴体积和倾斜角度对液滴输运速度的影响。通过理论模型和力学分析揭示了液滴输运过程。最后,探讨了 WGCCN 及其阵列模型在雾收集方面的应用。
在锥形结构梯度中的连续化学梯度会引起液滴的定向输运,并且输运速度取决于液滴的体积。此外,在多种驱动力的协同作用下,即使液滴倾斜一定角度,仍能保持定向输运。简单的液滴操控行为预示着通过有效多驱动力的协同作用,可以将液滴的定向输运行为应用于微流控操控中,并取得满意的效果。