Xi Min, Yong Jiale, Chen Feng, Yang Qing, Hou Xun
State Key Laboratory for Manufacturing System Engineering, Shaanxi Key Laboratory of Photonics Technology for Information, School of Electronics & Information Engineering, Xi'an Jiaotong University Xi'an 710049 PR China
The International Joint Research Laboratory for Micro/Nano Manufacturing and Measurement Technologies, Xi'an Jiaotong University Xi'an 710049 PR China.
RSC Adv. 2019 Feb 26;9(12):6650-6657. doi: 10.1039/c8ra08328b. eCollection 2019 Feb 22.
Surfaces that can strongly repel various complex liquids, not just pure water, are highly desirable and the fabrication of such surfaces still remains a huge challenge because the liquids one wants to repel usually have a complex chemical composition, viscosity, and concentration. Here, a superhygrophobic surface microstructure was created on a polytetrafluoroethylene (PTFE) surface by femtosecond laser treatment. The laser-ablated surface was composed of a micro/nanoscale hierarchical structure and micropores with a certain degree of re-entrant curvature. After femtosecond laser ablation, the sample surface is directly endowed with superhygrophobicity and has great ability to repel various pure and complex liquids, such as water, 10 000 ppm bovine serum albumin, cola, 10 000 ppm glucose, juice, and saline. It is because the combined effect of the ultralow surface energy of the PTFE material, the laser-induced hierarchical rough microstructure, and the partly re-entrant surface curvature of the porous structure allows the complex liquid droplets to be at the robust Cassie state on the laser-induced surface microstructure. Such superhygrophobic surfaces can be potentially applied in cell engineering, medical instruments, food packaging, microfluidics technology, chemical engineering, and so on.
能够强烈排斥各种复杂液体而非仅仅是纯水的表面是非常理想的,然而制造这样的表面仍然是一个巨大的挑战,因为人们想要排斥的液体通常具有复杂的化学成分、粘度和浓度。在此,通过飞秒激光处理在聚四氟乙烯(PTFE)表面创建了一种超疏水表面微观结构。激光烧蚀后的表面由微/纳米级分层结构和具有一定程度凹入曲率的微孔组成。飞秒激光烧蚀后,样品表面直接具备超疏水性,并且具有很强的排斥各种纯净和复杂液体的能力,如水、10000 ppm牛血清白蛋白、可乐、10000 ppm葡萄糖、果汁和盐水。这是因为PTFE材料的超低表面能、激光诱导的分层粗糙微观结构以及多孔结构的部分凹入表面曲率的综合作用,使得复杂液滴在激光诱导的表面微观结构上处于稳定的Cassie状态。这种超疏水表面在细胞工程、医疗器械、食品包装、微流控技术、化学工程等领域具有潜在应用价值。