Elzaabalawy Assem, Meguid Shaker A
Mechanics and Aerospace Design Lab, University of Toronto, Toronto, M5S 3G8 Canada.
Int J Mech Mater Des. 2022;18(3):509-547. doi: 10.1007/s10999-022-09593-x. Epub 2022 May 25.
Superhydrophobicity and icephobicity are governed by surface chemistry and surface structure. These two features signify a potential advance in surface engineering and have recently garnered significant attention from the research community. This review aims to simulate further research in the development of superhydrophobic and icephobic surfaces in order to achieve their wide-spread adoption in practical applications. The review begins by establishing the fundamentals of the wetting phenomenon and wettability parameters. This is followed by the recent advances in modeling and simulations of the response of superhydrophobic surfaces to static and dynamic droplets contact and impingement, respectively. In view of their versatility and multifunctionality, a special attention is given to the development of these surfaces using nanocomposites. Furthermore, the review considers advances in icephobicity, its comprehensive characterization and its relation to superhydrophobicity. The review also includes the importance of the use of superhydrophobic surface to combat viral and bacterial contamination that exist in fomites.
超疏水性和疏冰性受表面化学和表面结构的支配。这两个特性标志着表面工程领域的一项潜在进展,最近引起了研究界的广泛关注。本综述旨在推动超疏水和疏冰表面开发方面的进一步研究,以实现它们在实际应用中的广泛采用。综述首先阐述了润湿现象和润湿性参数的基本原理。接下来分别介绍了超疏水表面对静态和动态液滴接触及撞击响应的建模与模拟方面的最新进展。鉴于其多功能性,特别关注了使用纳米复合材料开发此类表面的情况。此外,综述还探讨了疏冰性方面的进展、其全面表征及其与超疏水性的关系。综述还包括使用超疏水表面对抗污染物上存在的病毒和细菌污染的重要性。