Department of Clinical Laboratory, The Affiliated Drum Tower Hospital of Nanjing University Medical School, 210008 Nanjing, China.
State Key Laboratory of Bioelectronics, School of Biological Science and Medical Engineering, Southeast University, 210096 Nanjing, China.
Proc Natl Acad Sci U S A. 2020 Mar 3;117(9):4527-4532. doi: 10.1073/pnas.1921281117. Epub 2020 Feb 18.
The manipulation of liquid droplets demonstrates great importance in various areas from laboratory research to our daily life. Here, inspired by the unique microstructure of plant stomata, we present a surface with programmable wettability arrays for droplets manipulation. The substrate film of this surface is constructed by using a coaxial capillary microfluidics to emulsify and pack graphene oxide (GO) hybrid -isopropylacrylamide (NIPAM) hydrogel solution into silica nanoparticles-dispersed ethoxylated trimethylolpropane triacrylate (ETPTA) phase. Because of the distribution of the silica nanoparticles on the ETPTA interface, the outer surface of the film could achieve favorable hydrophobic property under selective fluorosilane decoration. Owing to the outstanding photothermal energy transformation property of the GO, the encapsulated hydrophilic hydrogel arrays could shrink back into the holes to expose their hydrophobic surface with near-infrared (NIR) irradiation; this imparts the composite film with remotely switchable surface droplet adhesion status. Based on this phenomenon, we have demonstrated controllable droplet sliding on programmable wettability pathways, together with effective droplet transfer for printing with mask integration, which remains difficult to realize by existing techniques.
液滴操控在从实验室研究到日常生活的各个领域都具有重要意义。受植物气孔独特微观结构的启发,我们提出了一种具有可编程润湿性阵列的表面,用于液滴操控。该表面的基底薄膜是通过使用同轴毛细管微流控技术将氧化石墨烯(GO)与异丙基丙烯酰胺(NIPAM)水凝胶溶液乳化并封装到二氧化硅纳米粒子分散的乙氧基化三羟甲基丙烷三丙烯酸酯(ETPTA)相中制成的。由于二氧化硅纳米粒子在 ETPTA 界面上的分布,薄膜的外表面在经过选择性氟硅烷修饰后可以获得良好的疏水性。由于 GO 具有出色的光热能量转换特性,被包裹的亲水性水凝胶阵列在近红外(NIR)辐照下可以收缩回孔中,暴露出其疏水性表面;这使得复合薄膜具有远程可切换的表面液滴附着状态。基于这一现象,我们展示了在可编程润湿性路径上可控的液滴滑动,以及与掩模集成的有效液滴转移印刷,这是现有技术难以实现的。