Kim Tae-Hyun, Ha Sung-Hun, Jang Nam-Su, Kim Jeonghyo, Kim Ji Hoon, Park Jong-Kweon, Lee Deug-Woo, Lee Jaebeom, Kim Soo-Hyung, Kim Jong-Man
Department of Nano Fusion Technology and BK21 Plus Nano Convergence Technology Division, and ‡Department of Cogno-Mechatronics Engineering, Pusan National University , Busan 609-735, Republic of Korea.
ACS Appl Mater Interfaces. 2015 Mar 11;7(9):5289-95. doi: 10.1021/am5086066. Epub 2015 Mar 2.
Optical transparency and mechanical flexibility are both of great importance for significantly expanding the applicability of superhydrophobic surfaces. Such features make it possible for functional surfaces to be applied to various glass-based products with different curvatures. In this work, we report on the simple and potentially cost-effective fabrication of highly flexible and transparent superhydrophobic films based on hierarchical surface design. The hierarchical surface morphology was easily fabricated by the simple transfer of a porous alumina membrane to the top surface of UV-imprinted polymeric micropillar arrays and subsequent chemical treatments. Through optimization of the hierarchical surface design, the resultant superhydrophobic films showed superior surface wetting properties (with a static contact angle of >170° and contact angle hysteresis of <3.5°) in the Cassie-Baxter wetting regime, considerable dynamic water repellency (with perfect bouncing of a water droplet dropped from an impact height of 30 mm), and good optical transparency (>82% at 550 nm wavelength). The superhydrophobic films were also experimentally found to be robust without significant degradation in the superhydrophobicity, even under repetitive bending and pressing for up to 2000 cycles. Finally, the practical usability of the proposed superhydorphobic films was clearly demonstrated by examining the antiwetting performance in real time while pouring water on the film and submerging the film in water.
光学透明性和机械柔韧性对于显著扩大超疏水表面的适用性都非常重要。这些特性使得功能性表面能够应用于具有不同曲率的各种玻璃基产品。在这项工作中,我们报道了基于分级表面设计的高度柔性且透明的超疏水薄膜的简单且具有潜在成本效益的制备方法。通过将多孔氧化铝膜简单转移到紫外压印聚合物微柱阵列的顶表面并随后进行化学处理,很容易制备出分级表面形态。通过优化分级表面设计,所得的超疏水薄膜在Cassie-Baxter润湿状态下表现出优异的表面润湿性(静态接触角>170°,接触角滞后<3.5°)、可观的动态防水性(从30 mm的冲击高度落下的水滴能完美反弹)以及良好的光学透明性(在550 nm波长处>82%)。实验还发现,即使在重复弯曲和按压多达2000次循环的情况下,超疏水薄膜依然坚固,超疏水性没有明显下降。最后,通过在薄膜上倒水并将薄膜浸入水中时实时检查抗湿性能,清楚地证明了所提出的超疏水薄膜的实际可用性。