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Preparation and corrosion resistance of superhydrophobic Ni–Co–Al(2)O(3) coating on X100 steel

X100 steel is easy to be corroded because of the high salt content in alkaline soils. The Ni–Co coating can slow down the corrosion but still cannot meet the requirements of modern demands. Based on this, in this study, on the basis of adding Al(2)O(3) particles to the Ni–Co coating to strengthen it...

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Autores principales: Zhang, Qiuli, Feng, Yi, Liao, Wenzhi, Li, Jingjing, Yin, Chengxian, Zhou, Jun, Chen, Zhaoyang, Zhang, Pei, Ning, Zhongyi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9972356/
https://www.ncbi.nlm.nih.gov/pubmed/36865576
http://dx.doi.org/10.1039/d3ra00213f
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author Zhang, Qiuli
Feng, Yi
Liao, Wenzhi
Li, Jingjing
Yin, Chengxian
Zhou, Jun
Chen, Zhaoyang
Zhang, Pei
Ning, Zhongyi
author_facet Zhang, Qiuli
Feng, Yi
Liao, Wenzhi
Li, Jingjing
Yin, Chengxian
Zhou, Jun
Chen, Zhaoyang
Zhang, Pei
Ning, Zhongyi
author_sort Zhang, Qiuli
collection PubMed
description X100 steel is easy to be corroded because of the high salt content in alkaline soils. The Ni–Co coating can slow down the corrosion but still cannot meet the requirements of modern demands. Based on this, in this study, on the basis of adding Al(2)O(3) particles to the Ni–Co coating to strengthen its corrosion resistance, combined with superhydrophobic technology to inhibit corrosion, a micro/nano layered Ni–Co–Al(2)O(3) coating with a new combination of cells and papillae was electrodeposited on X100 pipeline steel, and superhydrophobicity was integrated into it using a low surface energy modification method to improve wettability and corrosion resistance. SEM, XRD, XPS, FTIR spectroscopy, contact angle, and an electrochemical workstation were used to investigate the superhydrophobic materials' microscopic morphology, structure, chemical composition, wettability, and corrosion resistance. The co-deposition behavior of nano Al(2)O(3) particles can be described by two adsorption steps. When 15 g L(−1) nano Al(2)O(3) particles were added, the coating surface became homogeneous, with an increase in papilla-like protrusions and obvious grain refinement. It had a surface roughness of 114 nm, a CA of 157.9° ± 0.6°, and –CH(2) and –COOH on its surface. The corrosion inhibition efficiency of the Ni–Co–Al(2)O(3) coating reached 98.57% in a simulated alkaline soil solution, and the corrosion resistance was significantly improved. Furthermore, the coating had extremely low surface adhesion, great self-cleaning ability, and outstanding wear resistance, which was expected to expand its application in the field of metal anticorrosion.
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spelling pubmed-99723562023-03-01 Preparation and corrosion resistance of superhydrophobic Ni–Co–Al(2)O(3) coating on X100 steel Zhang, Qiuli Feng, Yi Liao, Wenzhi Li, Jingjing Yin, Chengxian Zhou, Jun Chen, Zhaoyang Zhang, Pei Ning, Zhongyi RSC Adv Chemistry X100 steel is easy to be corroded because of the high salt content in alkaline soils. The Ni–Co coating can slow down the corrosion but still cannot meet the requirements of modern demands. Based on this, in this study, on the basis of adding Al(2)O(3) particles to the Ni–Co coating to strengthen its corrosion resistance, combined with superhydrophobic technology to inhibit corrosion, a micro/nano layered Ni–Co–Al(2)O(3) coating with a new combination of cells and papillae was electrodeposited on X100 pipeline steel, and superhydrophobicity was integrated into it using a low surface energy modification method to improve wettability and corrosion resistance. SEM, XRD, XPS, FTIR spectroscopy, contact angle, and an electrochemical workstation were used to investigate the superhydrophobic materials' microscopic morphology, structure, chemical composition, wettability, and corrosion resistance. The co-deposition behavior of nano Al(2)O(3) particles can be described by two adsorption steps. When 15 g L(−1) nano Al(2)O(3) particles were added, the coating surface became homogeneous, with an increase in papilla-like protrusions and obvious grain refinement. It had a surface roughness of 114 nm, a CA of 157.9° ± 0.6°, and –CH(2) and –COOH on its surface. The corrosion inhibition efficiency of the Ni–Co–Al(2)O(3) coating reached 98.57% in a simulated alkaline soil solution, and the corrosion resistance was significantly improved. Furthermore, the coating had extremely low surface adhesion, great self-cleaning ability, and outstanding wear resistance, which was expected to expand its application in the field of metal anticorrosion. The Royal Society of Chemistry 2023-02-28 /pmc/articles/PMC9972356/ /pubmed/36865576 http://dx.doi.org/10.1039/d3ra00213f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Qiuli
Feng, Yi
Liao, Wenzhi
Li, Jingjing
Yin, Chengxian
Zhou, Jun
Chen, Zhaoyang
Zhang, Pei
Ning, Zhongyi
Preparation and corrosion resistance of superhydrophobic Ni–Co–Al(2)O(3) coating on X100 steel
title Preparation and corrosion resistance of superhydrophobic Ni–Co–Al(2)O(3) coating on X100 steel
title_full Preparation and corrosion resistance of superhydrophobic Ni–Co–Al(2)O(3) coating on X100 steel
title_fullStr Preparation and corrosion resistance of superhydrophobic Ni–Co–Al(2)O(3) coating on X100 steel
title_full_unstemmed Preparation and corrosion resistance of superhydrophobic Ni–Co–Al(2)O(3) coating on X100 steel
title_short Preparation and corrosion resistance of superhydrophobic Ni–Co–Al(2)O(3) coating on X100 steel
title_sort preparation and corrosion resistance of superhydrophobic ni–co–al(2)o(3) coating on x100 steel
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9972356/
https://www.ncbi.nlm.nih.gov/pubmed/36865576
http://dx.doi.org/10.1039/d3ra00213f
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