Facile fabrication and antifogging test of a calcination-free SiO2 superhydrophilic coating

The low cost, accessibility, and ease of implementation of SiO 2 hydrophilic coatings should encourage further promotion as practical surface treatments. The calcination process, however, poses an obstacle to convenience. Herein, a calcination-free, antifogging SiO 2 superhydrophilic coating was pre...

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Veröffentlicht in:Journal of sol-gel science and technology 2023-03, Vol.105 (3), p.662-672
Hauptverfasser: Li, Mingwei, Sun, Yulei, Zeng, Gang, Xu, Hong, Li, Wenhao, Zhong, Yesheng, Shi, Liping, Wang, Rongguo, He, Xiaodong
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container_end_page 672
container_issue 3
container_start_page 662
container_title Journal of sol-gel science and technology
container_volume 105
creator Li, Mingwei
Sun, Yulei
Zeng, Gang
Xu, Hong
Li, Wenhao
Zhong, Yesheng
Shi, Liping
Wang, Rongguo
He, Xiaodong
description The low cost, accessibility, and ease of implementation of SiO 2 hydrophilic coatings should encourage further promotion as practical surface treatments. The calcination process, however, poses an obstacle to convenience. Herein, a calcination-free, antifogging SiO 2 superhydrophilic coating was prepared at room temperature by sol–gel method with the guidance of particle gradation theory, which was used to regulate the size and concentration of colloid nanoparticles. The surface micromorphology, roughness, and water contact angle (WCA) of coatings were characterized and measured using scanning electron microscope (SEM), atomic force microscope (AFM), and contact angle measuring equipment. The antifogging capability of superhydrophilic coating was also examined. It has been found that hydrophilicity of coatings can be significantly improved by reasonable particle gradation design. The closer the particle packing pattern is to the hexagonal close-packing model, the better the hydrophilicity of coatings. When the concentration ratio of particle diameter 60.29, 9.26, and 3.68 nm is 15:4:1, the coating exhibits exceptional hydrophilicity (WCA, 2.3°) and outstanding anti-fogging performance. An implication of this study is that a versatile and easily manipulated strategy is presented here for designing surface microstructures that are sensitive to roughness. Graphical Abstract Highlights The calcination-free SiO 2 superhydrophilic coating was successfully prepared by the sol-gel method. Reasonable matching of colloidal silica particle size can effectively improve the coating hydrophilic performance. The silica coating exhibits exceptional hydrophilicity (WCA, 2.3°) and outstanding anti-fogging performance.
doi_str_mv 10.1007/s10971-023-06042-9
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The calcination process, however, poses an obstacle to convenience. Herein, a calcination-free, antifogging SiO 2 superhydrophilic coating was prepared at room temperature by sol–gel method with the guidance of particle gradation theory, which was used to regulate the size and concentration of colloid nanoparticles. The surface micromorphology, roughness, and water contact angle (WCA) of coatings were characterized and measured using scanning electron microscope (SEM), atomic force microscope (AFM), and contact angle measuring equipment. The antifogging capability of superhydrophilic coating was also examined. It has been found that hydrophilicity of coatings can be significantly improved by reasonable particle gradation design. The closer the particle packing pattern is to the hexagonal close-packing model, the better the hydrophilicity of coatings. When the concentration ratio of particle diameter 60.29, 9.26, and 3.68 nm is 15:4:1, the coating exhibits exceptional hydrophilicity (WCA, 2.3°) and outstanding anti-fogging performance. An implication of this study is that a versatile and easily manipulated strategy is presented here for designing surface microstructures that are sensitive to roughness. Graphical Abstract Highlights The calcination-free SiO 2 superhydrophilic coating was successfully prepared by the sol-gel method. Reasonable matching of colloidal silica particle size can effectively improve the coating hydrophilic performance. 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source Springer Nature - Complete Springer Journals
subjects Ceramics
Chemistry and Materials Science
Coatings
Composites
Contact angle
Diameters
Electron microscopes
Fogging
Glass
Hydrophilicity
Inorganic Chemistry
Materials Science
Nanoparticles
Nanotechnology
Natural Materials
Optical and Electronic Materials
Original Paper: Functional coatings
Particle size
Roasting
Room temperature
Roughness
Silicon dioxide
Sol-gel processes
Surface treatment
thin films and membranes (including deposition techniques)
title Facile fabrication and antifogging test of a calcination-free SiO2 superhydrophilic coating
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