Trink Noa, Magdassi Shlomo
Institute of Chemistry and The Center for Nanoscience and Nanotechnology, The Hebrew University of Jerusalem, Jerusalem 9190401, Israel.
Singapore-HUJ Alliance for Research and Enterprise (SHARE), Smart Grippers for Soft Robotics (SGSR), Campus for Research Excellence and Technological Enterprise (CREATE), Singapore138602, Singapore.
ACS Appl Mater Interfaces. 2024 Nov 20;16(46):64276-64286. doi: 10.1021/acsami.4c14238. Epub 2024 Nov 6.
Adjustable wettability is important for various fields, such as droplet manipulation and controlled surface adhesion. Herein, we present high-resolution 3D stretchable structures with tunable superhydrophobicity, fabricated by a stereolithography-based printing process. The printing compositions comprise nonfluorinated monomers based on silicone urethane with dispersed hydrophobic silica particles. 3D lotus-like structures were designed and printed, having microsize pillars located at the external surfaces, with controlled dimensions and interspacing. The design of the pillars and the presence of the hydrophobic silica particles resulted in superhydrophobicity due to the surface structuring and entrapment of air between the pillars. The best structures display a contact angle of 153.3° ± 1.3° and rolling angle of 3.3° ± 0.5°, and their self-cleaning, water repellency, and buoyancy are demonstrated. The durability of the structure over time, water immersion, and heat exposure were tested, confirming the preservation of superhydrophobicity under these conditions. Upon stretching the surfaces, the interpillar distances change, thus enabling tuning the wetting properties and achieving good control over the contact and rolling angles, while the stretching-induced superhydrophobicity is reversible. This approach can expand the potential applications of superhydrophobic soft materials to fields requiring control over the wetting properties, including soft robotics, biomedical devices, and stretchable electronics.
可调润湿性对诸如液滴操控和可控表面粘附等各个领域都很重要。在此,我们展示了通过基于立体光刻的打印工艺制造的具有可调超疏水性的高分辨率3D可拉伸结构。打印组合物包含基于硅氧烷聚氨酯的非氟化单体以及分散的疏水性二氧化硅颗粒。设计并打印了3D莲花状结构,其外表面有微米尺寸的支柱,尺寸和间距可控。支柱的设计以及疏水性二氧化硅颗粒的存在,由于表面结构化和支柱间空气的截留而导致超疏水性。最佳结构的接触角为153.3°±1.3°,滚动角为3.3°±0.5°,并展示了其自清洁、防水和浮力特性。测试了该结构随时间、水浸和热暴露的耐久性,证实了在这些条件下超疏水性得以保留。拉伸表面时,支柱间距离会改变,从而能够调节润湿性并对接触角和滚动角实现良好控制,同时拉伸诱导的超疏水性是可逆的。这种方法可以将超疏水软材料的潜在应用扩展到需要控制润湿性的领域,包括软机器人技术、生物医学设备和可拉伸电子学。