Metallurgical and Materials Engineering , Indian Institute of Technology Patna , Bihta , Bihar 801106 , India.
ACS Appl Mater Interfaces. 2019 Jan 30;11(4):4616-4624. doi: 10.1021/acsami.8b19045. Epub 2019 Jan 17.
We present a simple, direct, one-step, scalable technique for instant tuning of all the different states of wetting characteristics using atmospheric plasma spray (APS) technique. We observed that, just by changing the process parameters in the APS technique, the wetting characteristics of an intrinsically hydrophilic aluminum metallic surface can be tuned to superhydrophilic (contact angle (CA): 0°), hydrophilic (CA: 19.6°), hydrophobic (CA: 97.6°), and superhydrophobic (CA: 156.5°) surfaces. Also, tuned superhydrophobic surface showed an excellent self-cleaning property. Further, we demonstrated that these surfaces retain their superhydrophobic nature even after exposure at elevated temperatures (up to 773 K) and on application of mechanical abrasion. Manipulation in different wetting behavior was possible mainly due to the presence of varying degrees of smooth surface as well as micropillars, which incorporated the multiscale roughness to the surface. "Re-entrant"-like microstructures such as mushroom, cauliflower, and cornet microstructures were observed in the case of tuned superhydrophobic surface, which is well-known for achieving the excellent water repellency over the hydrophilic surface.
我们提出了一种简单、直接、一步到位的技术,可使用常压等离子喷涂(APS)技术即时调整所有不同润湿特性状态。我们观察到,只需改变 APS 技术中的工艺参数,就可以将固有亲水性铝金属表面的润湿特性调至超亲水(接触角(CA):0°)、亲水(CA:19.6°)、疏水(CA:97.6°)和超疏水(CA:156.5°)表面。此外,调谐后的超疏水表面表现出优异的自清洁性能。此外,我们证明,即使在暴露于高温(高达 773 K)和机械磨损的情况下,这些表面仍保持超疏水性质。主要由于存在不同程度的光滑表面和微柱,从而在表面上引入了多尺度粗糙度,因此可以实现不同润湿行为的操控。在调谐后的超疏水表面上观察到了“倒圆”状微观结构,例如蘑菇、菜花和号角微观结构,这对于在亲水表面上实现优异的疏水性是众所周知的。