Reprint

Superhydrophobic Coatings for Corrosion and Tribology

Edited by
December 2019
166 pages
  • ISBN978-3-03921-784-7 (Paperback)
  • ISBN978-3-03921-785-4 (PDF)

This book is a reprint of the Special Issue Superhydrophobic Coatings for Corrosion and Tribology that was published in

Chemistry & Materials Science
Engineering
Summary

Superhydrophobic surfaces, with a water contact angle >150°, have attracted both academic and industrial interest due to their wide range of applications, such as water proofing, anti-fogging, antifouling, anti-icing, fluidic drag reduction and anti-corrosion. Currently the majority of superhydrophobic coatings are created using organic chemicals with low surface energy. However, the lack of mechanical strength and heat resistance prevents the use of these coatings in harsh environments. Quality superhydrophobic coatings developed using inorganic materials are therefore highly sought after. Ceramics are of particular interest due to their high mechanical strength, heat and corrosion resistance. Such superhydrophobic coatings have recently been successfully fabricated using a variety of ceramics and different approaches, and have shown the improved wear and tribocorrosion resistance properties. This Special Issue will focus on the recent developments in the fabrication of superhydrophobic coatings and their robustness against corrosion and wear resistance, but the original work on other properties of superhydrophobic coatings are also welcome.

 

In particular, the topics of interest include, but are not limited to:

  • Robust superhydrophobic coatings;
  • Coatings with super-wettability in multifunctional applications;
  • Wetting effects on corrosion and tribology;
  • Hierarchical Coating for wetting and modelling
Format
  • Paperback
License
© 2020 by the authors; CC BY license
Keywords
superhydrophobic surface; aluminum alloy; corrosion resistance; self-cleaning; water-lubricated bearing; surface topography; dynamic characteristics; empirical formula of friction coefficient; lubrication performance; superhydrophobic materials; rough morphology; parabolic morphology; truncated cone morphology; oil-water separation; electroless composite coating; Al2O3-coated particles; MoS2 particles; wear resistance; surfactant; Ni–Co; WS2; hydrophobicity; low friction; nanocomposite; electrochemical deposition; Co–Ni coating; super-hydrophobic surface; mechanical durability; corrosion protection; water-repellent surfaces; ferrofluid drop; magnetic field; damped harmonic oscillation; carbon steel; chemical etching; superhydrophobic; chemical stability; corrosion resistance; super-hydrophobic coating; corrosion protection; electrochemical surface engineering; anodization; micro-arc oxidation; etching; electrodeposition; stability; HVOF; suspension; TiO2; thermal spray; friction and wear behaviour; n/a