Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of the Ministry of Education, School of Chemistry and Environment, Beihang University, Beijing, 100191 (P. R. China).
Angew Chem Int Ed Engl. 2014 Jun 10;53(24):6163-7. doi: 10.1002/anie.201403246. Epub 2014 May 12.
Controlled directional spreading of a droplet on a smart high-adhesion surface was made possible by simply controlling anodic oxidation. The wettability gradient of the surface was controlled from 0.14 to 3.38° mm(-1) by adjusting the anodic oxidation conditions. When a water droplet made contact with the substrate, the droplet immediately spread in the direction of the wettability gradient but did not move in other directions, such as those perpendicular to the gradient direction, even when the surface was turned upside down. The spreading behavior was mainly controlled by the wettability gradient. Surfaces with a V- or inverse-V-shaped wettability gradient were also formed by the same method, and two droplets on these surfaces spread either toward or away from one another as designed. This method could be used to oxidize many conductive substrates (e.g., copper, aluminum) to form surfaces with variously shaped wettability gradients. It has potential for application in microfluidic devices.
通过简单地控制阳极氧化,实现了在智能高附着力表面上对液滴的可控定向扩展。通过调整阳极氧化条件,将表面的润湿性梯度从 0.14 度/毫米至 3.38 度/毫米控制。当水滴与基底接触时,水滴立即在润湿性梯度方向上扩展,但不会在其他方向上移动,例如垂直于梯度方向,即使表面被倒置也是如此。扩展行为主要受润湿性梯度控制。同样的方法还可以形成具有 V 形或倒 V 形润湿性梯度的表面,并且两个在这些表面上的液滴会按照设计彼此相向或相背扩展。该方法可用于氧化许多导电基底(例如铜、铝)以形成具有各种形状的润湿性梯度的表面。它有可能应用于微流控设备。