Dallinger Alexander, Steinwender Felix, Gritzner Matthias, Greco Francesco
Institute of Solid State Physics, NAWI Graz, Graz University of Technology, 8010 Graz, Austria.
The Biorobotics Institute, Scuola Superiore Sant'Anna, Viale R. Piaggio 34, 56025 Pontedera, Italy.
ACS Appl Nano Mater. 2023 Jul 10;6(18):16201-16211. doi: 10.1021/acsanm.3c02066. eCollection 2023 Sep 22.
The control of surface wettability is a technological key aspect and usually poses considerable challenges connected to high cost, nanostructure, and durability, especially when aiming at surface patterning with high and extreme wettability contrast. This work shows a simple and scalable approach by using laser-induced graphene (LIG) and a locally inert atmosphere to continuously tune the wettability of a polyimide/LIG surface from hydrophilic to superhydrophobic (Φ ∼ 160°). This is related to the reduced amount of oxygen on the LIG surface, influenced by the local atmosphere. Furthermore, the influence of the roughness pattern of LIG on the wettability is investigated. Both approaches are combined, and the influence of surface chemistry and roughness is discussed. Measurements of the roll-off angle show that LIG scribed in an inert atmosphere with a low roughness has the highest droplet mobility with a roll-off angle of Φ = (1.7 ± 0.3)°. The superhydrophobic properties of the samples were maintained for over a year and showed no degradation after multiple uses. Applications of surfaces with extreme wettability contrast in millifluidics and fog basking are demonstrated. Overall, the proposed processing allows for the continuous tuning and patterning of the surface properties of LIG in a very accessible fashion useful for "lab-on-chip" applications.
表面润湿性的控制是一个关键技术方面,通常会带来与高成本、纳米结构和耐久性相关的重大挑战,特别是当旨在实现具有高和极端润湿性对比度的表面图案化时。这项工作展示了一种简单且可扩展的方法,即使用激光诱导石墨烯(LIG)和局部惰性气氛来连续调节聚酰亚胺/LIG表面的润湿性,使其从亲水性转变为超疏水性(Φ ∼ 160°)。这与LIG表面上受局部气氛影响的氧量减少有关。此外,还研究了LIG的粗糙度图案对润湿性的影响。将这两种方法结合起来,并讨论了表面化学和粗糙度的影响。滚落角的测量表明,在具有低粗糙度的惰性气氛中刻划的LIG具有最高的液滴流动性,滚落角为Φ = (1.7 ± 0.3)°。样品的超疏水性保持了一年多,并且在多次使用后没有降解。展示了具有极端润湿性对比度的表面在微流体和雾收集方面的应用。总体而言,所提出的工艺能够以一种非常便捷的方式对LIG的表面性质进行连续调节和图案化,这对于“芯片实验室”应用非常有用。