School of Electrical and Electronic Engineering , Yonsei University , Seoul 03722 , Republic of Korea.
Center for Biomaterials, Biomedical Research Institute , Korea Institute of Science and Technology (KIST) , Seoul 02792 , Republic of Korea.
ACS Appl Mater Interfaces. 2019 Feb 6;11(5):5484-5491. doi: 10.1021/acsami.8b17181. Epub 2019 Jan 4.
Superomniphobic surfaces showing extremely liquid-repellent properties have received a great amount of attention as they can be used in various industrial and biomedical applications. However, so far, the fabrication processes of these materials mostly have involved the coating of perfluorocarbons onto micro- and nanohierarchical structures of these surfaces, which inevitably causes environmental pollution, leading to health concerns. Herein, we developed a facile method to obtain flexible superomniphobic surfaces without perfluorocarbon coatings that have shape-tunable mushroom-like micropillars (MPs). Inspired by the unique structures on the skin of springtails, we fabricated mushroom-like structures with downward facing edges (i.e., a doubly re-entrant structure) on a surface. The flexible MP structures were fabricated using a conventional micromolding technique, and the shapes of the mushroom caps were made highly tunable via the deposition of a thin aluminum (Al) layer. Due to the compressive residual stress of the Al, the mushroom caps were observed to bend toward the polymer upon forming doubly re-entrant-MP structures. The obtained surface was found to repel most low-surface-tension liquids such as oils, alcohols, and even fluorinated solvents. The developed flexible superomniphobic surface showed liquid repellency even upon mechanical stretching and after surface energy modification. We envision that the developed superomniphobic surface with high flexibility and wetting resistance after surface energy modification will be used in a wide range of applications such as self-cleaning clothes and gloves.
具有超疏液性能的超双疏表面因其在各种工业和生物医学应用中的广泛用途而备受关注。然而,到目前为止,这些材料的制造工艺大多涉及将全氟碳化合物涂覆到这些表面的微纳分级结构上,这不可避免地会造成环境污染,从而引发健康问题。在此,我们开发了一种简便的方法来获得无需全氟碳化合物涂层的柔性超双疏表面,该表面具有形状可调的蘑菇状微柱(MPs)。受弹尾虫皮肤独特结构的启发,我们在表面上制造了具有向下边缘的蘑菇状结构(即双倒圆结构)。使用常规的微成型技术制造柔性 MP 结构,并通过沉积薄的铝(Al)层使蘑菇帽的形状高度可调。由于 Al 的压缩残余应力,观察到蘑菇帽在形成双倒圆-MP 结构时会向聚合物弯曲。所得到的表面被发现排斥大多数低表面张力液体,如油、醇,甚至氟化溶剂。开发的柔性超双疏表面即使在机械拉伸和表面能修饰后也表现出良好的疏液性。我们设想,经过表面能修饰后具有高柔韧性和耐湿性的开发的超双疏表面将广泛应用于自清洁衣物和手套等领域。