Journal Article10.1111/ijag.16643
High‐throughput laser‐based surface functionalization for fabrication of superhydrophobic soda‐lime glass
Qing Feng Wang,Chao Liu,Kai Yin,Yongqi Zhou,Huixin Wang +4 more
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TL;DR: High-throughput laser-based surface functionalization for fabrication of superhydrophobic soda-lime glass successfully renders glass superhydrophobicity with high process efficiency and low production cost.
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Abstract: Rendering transparent materials extreme wettability, e.g., superhydrophobicity or superhydrophilicity, has received considerable attention during the past decades. While fabrication of superhydrophobic glass with high processing efficiency and low production cost has always been a challenge. In this work, a laser‐based surface functionalization process that combines UV nanosecond laser texturing and silicone oil‐assisted heat treatment was employed to render glass superhydrophobicity with high process throughput. The wettability transition is attributed to the combined effects of laser texturing that induces hierarchical surface micro/nanostructures and silicone oil‐assisted heat treatment that alters surface chemistry and lowers surface energy. The surface transmittance of the laser‐based surface functionalized glass samples in the visible spectrum was experimentally measured and analyzed. The laser‐based surface functionalized glass sample also exhibited long‐term stability in air, mechanical robustness and good self‐cleaning property. More importantly, the developed process shows both high process efficiency and cost effectiveness, and has potential for applications where superhydrophobic glass is required.This article is protected by copyright. All rights reserved
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Citations
Fabrication of antibacterial and anti-corrosive zirconia ceramics with extreme wettability by facile laser-based surface modification
Chao Liu,Jiajun Fu,Li Li,Huixin Wang,Xianjun Pei,Tairui Zhang,Qinghua Wang +6 more
TL;DR: The laser-based surface modification technique developed in this study successfully fabricated antibacterial and anti-corrosive zirconia ceramics with extreme wettability. The surface wettability was transitioned from hydrophilicity to superhydrophobicity, and the antibacterial adhesion and corrosion resistance were significantly improved.
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Micro‐ and Nanostructured Surfaces are Structured by a Femtosecond Laser toward Superhydrophobicity: A Review
Dong Zhang,Liqiang Zhang,Jinchao Ji,Li Wang,JingRui Zhang,Yongqian Shen +5 more
TL;DR: This review explores femtosecond laser processing for fabricating superhydrophobic surfaces, analyzing microscopic mechanisms, and demonstrating applications in aerospace, transportation, and energy, highlighting advantages and future trends in oil-water separation, self-cleaning, and photovoltaic-panel cleaning.
References
Superhydrophobic surfaces: from structural control to functional application
TL;DR: A superhydrophobic surface is a surface with a water contact angle close to or higher than 150° as discussed by the authors, and it is the combination of surface roughness and low-surface-energy modification that leads to super-hydrophobicity.
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Wetting on Hydrophobic Rough Surfaces: To Be Heterogeneous or Not To Be?
TL;DR: In this paper, the Wenzel and Cassie−Baxter equations are put into proper mathematical-thermodynamic perspective and defined the conditions for determining the transition between the homogeneous and heterogeneous wetting regimes.
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Direct femtosecond laser surface nano/microstructuring and its applications
Anatoliy Y. Vorobyev,Chunlei Guo +1 more
TL;DR: In this article, a new field of direct femtosecond laser surface nano/microstructuring and its applications is reviewed, where the authors present a review of the current state-of-the-art in this field.
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Superhydrophobic surfaces and emerging applications: Non-adhesion, energy, green engineering
TL;DR: A review of superhydrophobicity and related phenomena induced by surface micro-and nanostructuring is provided in this paper, where the classical approaches to superhydophobicity using the Young, Wenzel, and Cassie-Baxter models for the contact angle (CA) are presented.
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