Superhydrophobic coatings for aluminium surfaces synthesized by chemical etching process

In this paper, the superhydrophobic coatings on aluminium surfaces were prepared by two-step (chemical etching followed by coating) and one-step (chemical etching and coating in a single step) processes using potassium hydroxide and lauric acid. Besides, surface immersion time in solutions was varie...

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Main Authors: Priya Varshney, Soumya Sanjeeb Mohapatra, Aditya Kumar
Format: Article
Language:English
Published: Taylor & Francis Group 2016-10-01
Series:International Journal of Smart and Nano Materials
Subjects:
Online Access:http://dx.doi.org/10.1080/19475411.2016.1272502
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spelling doaj-38d5c450c11248b689bd07a0005fcf6f2020-11-24T21:39:04ZengTaylor & Francis GroupInternational Journal of Smart and Nano Materials1947-54111947-542X2016-10-017424826410.1080/19475411.2016.12725021272502Superhydrophobic coatings for aluminium surfaces synthesized by chemical etching processPriya Varshney0Soumya Sanjeeb Mohapatra1Aditya Kumar2National Institute of Technology (NIT) RourkelaNational Institute of Technology (NIT) RourkelaNational Institute of Technology (NIT) RourkelaIn this paper, the superhydrophobic coatings on aluminium surfaces were prepared by two-step (chemical etching followed by coating) and one-step (chemical etching and coating in a single step) processes using potassium hydroxide and lauric acid. Besides, surface immersion time in solutions was varied in both processes. Wettability and surface morphologies of treated aluminium surfaces were characterized using contact angle measurement technique and scanning electron microscopy, respectively. Microstructures are formed on the treated aluminium surfaces which lead to increase in contact angle of the surface (>150°). Also on increasing immersion time, contact angle further increases due to increase in size and depth of microstructures. Additionally, these superhydrophobic coatings show excellent self-cleaning and corrosion-resistant behavior. Water jet impact, floatation on water surface, and low temperature condensation tests assert the excellent water-repellent nature of coatings. Further, coatings are to be found mechanically, thermally, and ultraviolet stable. Along with, these coatings are found to be excellent regeneration ability as verified experimentally. Although aforesaid both processes generate durable and regenerable superhydrophobic aluminium surfaces with excellent self-cleaning, corrosion-resistant, and water-repellent characteristics, but one-step process is proved more efficient and less time consuming than two-step process and promises to produce superhydrophobic coatings for industrial applications.http://dx.doi.org/10.1080/19475411.2016.1272502Superhydrophobicself-cleaningcorrosion-resistantetching
collection DOAJ
language English
format Article
sources DOAJ
author Priya Varshney
Soumya Sanjeeb Mohapatra
Aditya Kumar
spellingShingle Priya Varshney
Soumya Sanjeeb Mohapatra
Aditya Kumar
Superhydrophobic coatings for aluminium surfaces synthesized by chemical etching process
International Journal of Smart and Nano Materials
Superhydrophobic
self-cleaning
corrosion-resistant
etching
author_facet Priya Varshney
Soumya Sanjeeb Mohapatra
Aditya Kumar
author_sort Priya Varshney
title Superhydrophobic coatings for aluminium surfaces synthesized by chemical etching process
title_short Superhydrophobic coatings for aluminium surfaces synthesized by chemical etching process
title_full Superhydrophobic coatings for aluminium surfaces synthesized by chemical etching process
title_fullStr Superhydrophobic coatings for aluminium surfaces synthesized by chemical etching process
title_full_unstemmed Superhydrophobic coatings for aluminium surfaces synthesized by chemical etching process
title_sort superhydrophobic coatings for aluminium surfaces synthesized by chemical etching process
publisher Taylor & Francis Group
series International Journal of Smart and Nano Materials
issn 1947-5411
1947-542X
publishDate 2016-10-01
description In this paper, the superhydrophobic coatings on aluminium surfaces were prepared by two-step (chemical etching followed by coating) and one-step (chemical etching and coating in a single step) processes using potassium hydroxide and lauric acid. Besides, surface immersion time in solutions was varied in both processes. Wettability and surface morphologies of treated aluminium surfaces were characterized using contact angle measurement technique and scanning electron microscopy, respectively. Microstructures are formed on the treated aluminium surfaces which lead to increase in contact angle of the surface (>150°). Also on increasing immersion time, contact angle further increases due to increase in size and depth of microstructures. Additionally, these superhydrophobic coatings show excellent self-cleaning and corrosion-resistant behavior. Water jet impact, floatation on water surface, and low temperature condensation tests assert the excellent water-repellent nature of coatings. Further, coatings are to be found mechanically, thermally, and ultraviolet stable. Along with, these coatings are found to be excellent regeneration ability as verified experimentally. Although aforesaid both processes generate durable and regenerable superhydrophobic aluminium surfaces with excellent self-cleaning, corrosion-resistant, and water-repellent characteristics, but one-step process is proved more efficient and less time consuming than two-step process and promises to produce superhydrophobic coatings for industrial applications.
topic Superhydrophobic
self-cleaning
corrosion-resistant
etching
url http://dx.doi.org/10.1080/19475411.2016.1272502
work_keys_str_mv AT priyavarshney superhydrophobiccoatingsforaluminiumsurfacessynthesizedbychemicaletchingprocess
AT soumyasanjeebmohapatra superhydrophobiccoatingsforaluminiumsurfacessynthesizedbychemicaletchingprocess
AT adityakumar superhydrophobiccoatingsforaluminiumsurfacessynthesizedbychemicaletchingprocess
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