Collaborative Innovation Center of Advanced Microstructures, Jiangsu Provincial Key Laboratory of Photonic and Electronic Materials, School of Electronic Science and Engineering, Nanjing University , Nanjing 210093, China.
Nano Lett. 2014 Aug 13;14(8):4803-9. doi: 10.1021/nl5019782. Epub 2014 Jun 30.
Superhydrophobic surfaces are of immense scientific and technological interests for a broad range of applications. However, a major challenge remains in developing scalable methodologies that enable superhydrophobic coatings on versatile substrates with a combination of strong mechanical stability, optical transparency, and even stretchability. Herein, we developed a scalable methodology to versatile hydrophobic surfaces that combine with strong mechanical stability, optical transparency, and stretchability by using a self-assembled hydrogel as the template to in situ generate silica microstructures and subsequent silanization. The superhydrophobic coatings can be enabled on virtually any substrates via large-area deposition techniques like dip coating. Transparent surfaces with optical transmittance as high as 98% were obtained. Moreover, the coatings exhibit superior mechanical flexibility and robustness that it can sustain contact angles ∼ 160° even after 5000 cycles of mechanically stretching at 100% strain. The multifunctional surfaces can be used as screen filters and sponges for the oil/water separation that can selectively absorb oils up to 40× their weight.
超疏水表面在广泛的应用中具有巨大的科学和技术兴趣。然而,开发可扩展的方法仍然是一个主要挑战,这些方法可以在具有强机械稳定性、光学透明度甚至可拉伸性的各种基体上形成超疏水涂层。在这里,我们开发了一种可扩展的方法,可以将具有强机械稳定性、光学透明度和可拉伸性的疏水表面结合起来,方法是使用自组装水凝胶作为模板原位生成二氧化硅微结构和随后的硅烷化。超疏水涂层可以通过大面积沉积技术(如浸涂)应用于几乎任何基体上。得到的透明表面的光透过率高达 98%。此外,该涂层具有优异的机械柔韧性和坚固性,即使在 100%应变下经过 5000 次机械拉伸循环后,仍能保持约 160°的接触角。这种多功能表面可用作筛网过滤器和用于油水分离的海绵,可以选择性地吸收高达自重 40 倍的油。