Analysis of Wettability and Contact Angle Hysteresis on a Thermally Treated Low Free Energy Surface

Authors

  • Vishwajeet Kumar
    Affiliation
    Department of Mechanical Engineering, National Institute of Technology Agartala, Tripura 799046, India
  • Jyoti Kumar
    Affiliation
    Department of Mechanical Engineering, National Institute of Technology Agartala, Tripura 799046, India
  • Abhik Majumder
    Affiliation
    Department of Mechanical Engineering, National Institute of Technology Agartala, Tripura 799046, India
https://doi.org/10.3311/PPch.44080

Abstract

The biomimetic replication of the lotus leaf to create hierarchical surface morphology has attracted significant research interest due to its potential applications in self-cleaning, anti-corrosion, anti-fouling, and anti-icing surfaces. Several attempts have been made to create such structure using metal-fatty acid combination. However, zinc myristate (ZnMTA) surfaces have not been fully explored, despite their relevance and promise in surface engineering. In this study, a superhydrophobic coating was fabricated on a copper substrate through the electrochemical deposition of zinc, followed by thermal annealing and surface modification using myristic acid (MTA). The electrodeposition and annealing processes generated a hierarchical micro–nano surface morphology, whereas surface modification led to the formation of a low-surface-energy ZnMTA layer. Scanning electron microscopy revealed micro-scale clusters decorated with nano-petal structures, producing void spaces capable of trapping air. Quantitative image analysis indicated a void fraction of 86.7 ± 5.4%, which is conducive to the formation of a Cassie–Baxter-type wetting regime. As a result, the coating exhibited excellent water repellency, with a water contact angle of 156° ± 0.8°, contact angle hysteresis of 5°, and roll-off angle or sliding angle of 4°. High-speed imaging of droplet impact further demonstrated droplet rebound with a contact time of 28 ms and a spreading factor of β = 2.33, indicating weak liquid–solid adhesion forces. The combination of hierarchical roughness and low surface energy renders the developed coating promising for applications requiring durable water-repellent surfaces.

Keywords:

superhydrophobic coating, zinc myristate (ZnMTA), hierarchical micro–nano structure, electrochemical deposition, Cassie–Baxter wetting, droplet rebound, contact angle hysteresis (CAH)

Citation data from Crossref and Scopus

Published Online

2026-09-13

How to Cite

Kumar, V., Kumar, J., Majumder, A. “Analysis of Wettability and Contact Angle Hysteresis on a Thermally Treated Low Free Energy Surface”, Periodica Polytechnica Chemical Engineering, 2026. https://doi.org/10.3311/PPch.44080

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Articles