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Improvement of Corrosion Resistance of Waterborne Polyurethane Coatings by Covalent and Noncovalent Grafted Graphene Oxide Nanosheets

[Image: see text] The amphiphilic graphene derivative was prepared by covalent grafting of graphene oxide (GO) with isophorone diisocyanate and N,N-dimethylethanolamine and then noncovalent grafting of GO with sodium dodecylbenzenesulfonate. The results obtained from infrared spectroscopy, X-ray pho...

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Autores principales: Wen, Jian-Gong, Geng, Wenming, Geng, Hong-Zhang, Zhao, Hui, Jing, Li-Chao, Yuan, Xiao-Tong, Tian, Ying, Wang, Tao, Ning, Yu-Jie, Wu, Lei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6893952/
https://www.ncbi.nlm.nih.gov/pubmed/31815229
http://dx.doi.org/10.1021/acsomega.9b02687
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author Wen, Jian-Gong
Geng, Wenming
Geng, Hong-Zhang
Zhao, Hui
Jing, Li-Chao
Yuan, Xiao-Tong
Tian, Ying
Wang, Tao
Ning, Yu-Jie
Wu, Lei
author_facet Wen, Jian-Gong
Geng, Wenming
Geng, Hong-Zhang
Zhao, Hui
Jing, Li-Chao
Yuan, Xiao-Tong
Tian, Ying
Wang, Tao
Ning, Yu-Jie
Wu, Lei
author_sort Wen, Jian-Gong
collection PubMed
description [Image: see text] The amphiphilic graphene derivative was prepared by covalent grafting of graphene oxide (GO) with isophorone diisocyanate and N,N-dimethylethanolamine and then noncovalent grafting of GO with sodium dodecylbenzenesulfonate. The results obtained from infrared spectroscopy, X-ray photoelectron spectroscopy, thermal gravimetric analysis, and X-ray diffraction analysis revealed that the short chains were successfully grafted onto the surface of GO. Subsequently, scanning electron microscopy and optical microscopy results showed that the modified GO (IP-GO) has the best dispersibility and compatibility than GO and reduced GO in the waterborne polyurethane matrix. The relationship between the corrosion resistance of composite coatings and the dispersibility of the graphene derivative and the compatibility of the graphene derivative with a polymer matrix were discussed. The anticorrosive properties were characterized by electrochemical impedance spectroscopy analysis and salt spray tests. Through a series of anticorrosion tests, it is concluded that the anticorrosion performance of a composite coating with 0.3 wt % IP-GO is significantly improved. The excellent anticorrosion performance is due to the perfect dispersion and good compatibility of IP-GO in waterborne polyurethane.
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spelling pubmed-68939522019-12-06 Improvement of Corrosion Resistance of Waterborne Polyurethane Coatings by Covalent and Noncovalent Grafted Graphene Oxide Nanosheets Wen, Jian-Gong Geng, Wenming Geng, Hong-Zhang Zhao, Hui Jing, Li-Chao Yuan, Xiao-Tong Tian, Ying Wang, Tao Ning, Yu-Jie Wu, Lei ACS Omega [Image: see text] The amphiphilic graphene derivative was prepared by covalent grafting of graphene oxide (GO) with isophorone diisocyanate and N,N-dimethylethanolamine and then noncovalent grafting of GO with sodium dodecylbenzenesulfonate. The results obtained from infrared spectroscopy, X-ray photoelectron spectroscopy, thermal gravimetric analysis, and X-ray diffraction analysis revealed that the short chains were successfully grafted onto the surface of GO. Subsequently, scanning electron microscopy and optical microscopy results showed that the modified GO (IP-GO) has the best dispersibility and compatibility than GO and reduced GO in the waterborne polyurethane matrix. The relationship between the corrosion resistance of composite coatings and the dispersibility of the graphene derivative and the compatibility of the graphene derivative with a polymer matrix were discussed. The anticorrosive properties were characterized by electrochemical impedance spectroscopy analysis and salt spray tests. Through a series of anticorrosion tests, it is concluded that the anticorrosion performance of a composite coating with 0.3 wt % IP-GO is significantly improved. The excellent anticorrosion performance is due to the perfect dispersion and good compatibility of IP-GO in waterborne polyurethane. American Chemical Society 2019-11-18 /pmc/articles/PMC6893952/ /pubmed/31815229 http://dx.doi.org/10.1021/acsomega.9b02687 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Wen, Jian-Gong
Geng, Wenming
Geng, Hong-Zhang
Zhao, Hui
Jing, Li-Chao
Yuan, Xiao-Tong
Tian, Ying
Wang, Tao
Ning, Yu-Jie
Wu, Lei
Improvement of Corrosion Resistance of Waterborne Polyurethane Coatings by Covalent and Noncovalent Grafted Graphene Oxide Nanosheets
title Improvement of Corrosion Resistance of Waterborne Polyurethane Coatings by Covalent and Noncovalent Grafted Graphene Oxide Nanosheets
title_full Improvement of Corrosion Resistance of Waterborne Polyurethane Coatings by Covalent and Noncovalent Grafted Graphene Oxide Nanosheets
title_fullStr Improvement of Corrosion Resistance of Waterborne Polyurethane Coatings by Covalent and Noncovalent Grafted Graphene Oxide Nanosheets
title_full_unstemmed Improvement of Corrosion Resistance of Waterborne Polyurethane Coatings by Covalent and Noncovalent Grafted Graphene Oxide Nanosheets
title_short Improvement of Corrosion Resistance of Waterborne Polyurethane Coatings by Covalent and Noncovalent Grafted Graphene Oxide Nanosheets
title_sort improvement of corrosion resistance of waterborne polyurethane coatings by covalent and noncovalent grafted graphene oxide nanosheets
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6893952/
https://www.ncbi.nlm.nih.gov/pubmed/31815229
http://dx.doi.org/10.1021/acsomega.9b02687
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