Formation mechanism of superhydrophobicity of stainless steel by laser-assisted decomposition of stearic acid and its corrosion resistance
Tang, Yiping and Cai, Yukui and Wang, Lei and Luo, Xichun (2022) Formation mechanism of superhydrophobicity of stainless steel by laser-assisted decomposition of stearic acid and its corrosion resistance. Optics and Laser Technology, 153. 108190. ISSN 0030-3992 (https://doi.org/10.1016/j.optlastec.2022.108190)
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Abstract
Superhydrophobic surfaces have attracted extensive attention over the past decade, primarily due to their self-cleaning, corrosion resistance and anti-bacterial abilities. However, it is still a challenge to prepare superhydrophobic surfaces with good chemical stability, low cost, environmental friendliness, and suitable for large-scale production applications. In this paper, a hybrid laser-chemical method to prepare superhydrophobic micro-patterns on 316L stainless steel were put forward, which combined laser ablation and laser assisted chemical decomposition of stearic acid (C 17H 35COOH). Experiments show that under the laser power of 10 W, the frequency of 150 kHz, the speed of 20 mm/s, and the mesh spacing of 75 μm, the best superhydrophobicity with a static contact angle of 153.9° can be obtained. The fundamental mechanism of laser-chemical method is the increase of the non-polar C–C(H) bond of specimen by laser assisted hydrodeoxygenation reaction of stearic acid. Moreover, unlike laser ablation-stearic acid coated specimen, the specimen prepared by laser-chemical method can maintain superhydrophobicity after 10 min of ultrasonic cleaning. The electrochemical corrosion experiments shows that the hybrid laser-chemical method can manufacture superhydrophobic specimens with better chemical durability and corrosion resistance.
ORCID iDs
Tang, Yiping, Cai, Yukui, Wang, Lei and Luo, Xichun ORCID: https://orcid.org/0000-0002-5024-7058;-
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Item type: Article ID code: 80589 Dates: DateEvent30 September 2022Published22 April 2022Published Online14 April 2022AcceptedSubjects: Science > Physics > Optics. Light Department: Faculty of Engineering > Design, Manufacture and Engineering Management Depositing user: Pure Administrator Date deposited: 06 May 2022 14:26 Last modified: 11 Nov 2024 13:28 URI: https://strathprints.strath.ac.uk/id/eprint/80589