Wang Haipeng, He Meijin, Liu Huan, Guan Yingchun
Hefei Innovation Research Institute , Beihang University , Hefei 230013 , P. R. China.
ACS Appl Mater Interfaces. 2019 Jul 17;11(28):25586-25594. doi: 10.1021/acsami.9b06865. Epub 2019 Jul 3.
Superhydrophobic metallic materials have drawn broad research interest because of promising applications in various fields. The mechanical stability of superhydrophobic surfaces is currently a major concern limiting their practical applications. Herein, we developed a simple method to fabricate robust superhydrophobic surfaces on stainless steel via direct ultrafast laser microprocessing. Of note is that the fabricated superhydrophobic surfaces can withstand mechanical abrasion against an 800 grit SiC sandpaper for 2.3 m at an applied pressure of 5.5 kPa without losing superhydrophobicity. It is proposed that the robust superhydrophobicity may be attributable to the formation of unique hierarchical micro-/nanostructures and a nonpolar carbon layer on the surface. The hierarchical structures are composed of laser-created micropillars and ablation-induced nanoparticles. The fabricated surfaces exhibit good thermal stability and still show superhydrophobicity after thermal treatment at 100 °C for 120 min, which is related to the inorganic nature of metallic materials. An excellent anti-icing property is achieved on the fabricated surfaces with the water droplets on it retaining the liquid state for over 500 min at -8.5 ± 0.5 °C, which benefits from the obtained superhydrophobicity, based on classic nucleation theory and the heat transfer between the rough solid surface and water droplet. We envision that the presented method provides a facile and effective route to fabricate large-area superhydrophobic surfaces with robust mechanical stability and excellent anti-icing property.
超疏水金属材料因其在各个领域的应用前景而引起了广泛的研究兴趣。超疏水表面的机械稳定性是目前限制其实际应用的主要问题。在此,我们开发了一种简单的方法,通过直接超快激光微加工在不锈钢上制备坚固的超疏水表面。值得注意的是,制备的超疏水表面在5.5 kPa的外加压力下,能承受800目SiC砂纸的机械磨损2.3 m而不丧失超疏水性。据推测,这种坚固的超疏水性可能归因于表面独特的分级微/纳米结构和非极性碳层的形成。分级结构由激光产生的微柱和烧蚀诱导的纳米颗粒组成。制备的表面具有良好的热稳定性,在100℃热处理120分钟后仍表现出超疏水性,这与金属材料的无机性质有关。在制备的表面上实现了优异的防冰性能,其上的水滴在-8.5±0.5℃下保持液态超过500分钟,这得益于所获得的超疏水性,基于经典成核理论以及粗糙固体表面与水滴之间的热传递。我们设想,所提出的方法为制备具有坚固机械稳定性和优异防冰性能的大面积超疏水表面提供了一种简便有效的途径。