4.7 Article

Nanosecond laser fabrication of superhydrophobic copper and anti-frost surface on copper

Journal

SURFACE & COATINGS TECHNOLOGY
Volume 441, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.surfcoat.2022.128514

Keywords

Superhydrophobicity; Copper; Nanosecond laser; Anti-freezing properties; Finite element analysis; Mechanical robustness

Funding

  1. National Natural Science Foundation of China [51606002]
  2. Natural Science Foundation of Anhui Jianzhu University [JY2021-C-063]
  3. Natural Science Foundation of Anhui Province of China [2108085ME185]

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A superhydrophobic and mechanically robust copper surface was designed and fabricated in this study. The combination of nanosecond laser and PFOTES was used to modify the copper surface, resulting in a superhydrophobic protective layer. The experiments showed excellent mechanical durability and frost suppression performance of the superhydrophobic copper surface.
The frost phenomenon on metal surfaces seriously reduces the system operation efficiency, and the research of robust and effective waterproof protective layer on metal surfaces has become a focus of attention. The ability of superhydrophobic surfaces to stay dry is attractive for frost suppression performance on metal surfaces. However, when subjected to external pressure, the waterproof protective layer is highly susceptible to damage, resulting in the loss of superhydrophobicity. Therefore, a copper surface possessing superhydrophobicity and mechanical robustness was designed and fabricated in this study. The design of robust micro-nano structures on copper surfaces using finite element analysis. The combined modification of the copper surface using nanosecond laser and 1H,1H,2H,2H-perfluorooctyltriethoxysilane (PFOTES). Or refilled nano-silica to form the combined surface. The contact angle of the combined surface was 160.3 degrees, and the rolling angle was 1 degrees, both of which helped to obtain superhydrophobicity. The mechanical robustness of the superhydrophobic copper surface was tested by knife, stainless steel wire ball, and tape. The freezing and anti-freezing properties of the droplet on the superhydrophobic copper surface and ordinary copper surface were observed by experiments. The results show that the surface of superhydrophobic copper still keeps superhydrophobicity after repeated mechanical durability tests. When the frost thickness is 0.9 mm (cooling temperature of -7 degrees C, horizontal placement), the superhydrophobic copper surface (composite surface) has excellent frost suppression performance compared to the ordinary copper surface, and the growth of frost could be delayed by 1.75 times. Meanwhile, the hydrophobicity of the superhydrophobic copper surface remained essentially unchanged after 50 freeze-thaw cycle experiments (a single cooling time of 30 min). We believe that the practical aspects of anti-frost design strategies on the copper surface show a great advantage.

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