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Two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings with excellent anti-corrosion performance

The economic loss and environmental damage caused by metal corrosion is irreversible. Thus, effective methods, such as coating technologies are used to protect metal surfaces from corrosion. In this work, cardanol-based benzoxazine (CB) was synthesized by a solvent-free method using cardanol, parafo...

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Autores principales: Chen, Xiangyang, Zhang, Xinmei, Chen, Jipeng, Bai, Weibin, Zheng, Xiaoxiao, Lin, Qi, Lin, Fengcai, Xu, Yanlian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8988169/
https://www.ncbi.nlm.nih.gov/pubmed/35425021
http://dx.doi.org/10.1039/d1ra08844k
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author Chen, Xiangyang
Zhang, Xinmei
Chen, Jipeng
Bai, Weibin
Zheng, Xiaoxiao
Lin, Qi
Lin, Fengcai
Xu, Yanlian
author_facet Chen, Xiangyang
Zhang, Xinmei
Chen, Jipeng
Bai, Weibin
Zheng, Xiaoxiao
Lin, Qi
Lin, Fengcai
Xu, Yanlian
author_sort Chen, Xiangyang
collection PubMed
description The economic loss and environmental damage caused by metal corrosion is irreversible. Thus, effective methods, such as coating technologies are used to protect metal surfaces from corrosion. In this work, cardanol-based benzoxazine (CB) was synthesized by a solvent-free method using cardanol, paraformaldehyde and n-octylamine. A cardanol-based benzoxazine copper polymer (CBCP) with good mechanical properties was then prepared by CuCl(2) catalysis and can be cured at room temperature. Subsequently, polyimide corrosion inhibitors with a two-dimensional sheet structure (pyromellitic dianhydride polyimide (PDPI) and 1,4,5,8-naphthalene tetracarboxylic dianhydride polyimide (NDPI)) were designed and prepared. Lastly, PDPI or NDPI was mixed with CBCP to obtain two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings. The Tafel curves and electrochemical impedance spectroscopy (EIS) measurements showed composite coatings with good corrosion resistance in different corrosive media. Compared to CBCP coating, the anticorrosion performance of the composite coatings improved obviously, especially the coating obtained with 0.5 wt% PDPI. It exhibits a high polarization resistance (3.874 × 10(9) Ω), a high protection efficiency (99.99% and 97.98%) and low corrosion rate (3.376 × 10(−6) mm year(−1)). This work suggested a facile and eco-friendly strategy for preparing bio-based anticorrosive composite coatings from low cost and abundant cardanol and polyimide corrosion inhibitors, which will significantly promote their application in metal anticorrosion.
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spelling pubmed-89881692022-04-13 Two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings with excellent anti-corrosion performance Chen, Xiangyang Zhang, Xinmei Chen, Jipeng Bai, Weibin Zheng, Xiaoxiao Lin, Qi Lin, Fengcai Xu, Yanlian RSC Adv Chemistry The economic loss and environmental damage caused by metal corrosion is irreversible. Thus, effective methods, such as coating technologies are used to protect metal surfaces from corrosion. In this work, cardanol-based benzoxazine (CB) was synthesized by a solvent-free method using cardanol, paraformaldehyde and n-octylamine. A cardanol-based benzoxazine copper polymer (CBCP) with good mechanical properties was then prepared by CuCl(2) catalysis and can be cured at room temperature. Subsequently, polyimide corrosion inhibitors with a two-dimensional sheet structure (pyromellitic dianhydride polyimide (PDPI) and 1,4,5,8-naphthalene tetracarboxylic dianhydride polyimide (NDPI)) were designed and prepared. Lastly, PDPI or NDPI was mixed with CBCP to obtain two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings. The Tafel curves and electrochemical impedance spectroscopy (EIS) measurements showed composite coatings with good corrosion resistance in different corrosive media. Compared to CBCP coating, the anticorrosion performance of the composite coatings improved obviously, especially the coating obtained with 0.5 wt% PDPI. It exhibits a high polarization resistance (3.874 × 10(9) Ω), a high protection efficiency (99.99% and 97.98%) and low corrosion rate (3.376 × 10(−6) mm year(−1)). This work suggested a facile and eco-friendly strategy for preparing bio-based anticorrosive composite coatings from low cost and abundant cardanol and polyimide corrosion inhibitors, which will significantly promote their application in metal anticorrosion. The Royal Society of Chemistry 2022-04-07 /pmc/articles/PMC8988169/ /pubmed/35425021 http://dx.doi.org/10.1039/d1ra08844k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Chen, Xiangyang
Zhang, Xinmei
Chen, Jipeng
Bai, Weibin
Zheng, Xiaoxiao
Lin, Qi
Lin, Fengcai
Xu, Yanlian
Two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings with excellent anti-corrosion performance
title Two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings with excellent anti-corrosion performance
title_full Two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings with excellent anti-corrosion performance
title_fullStr Two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings with excellent anti-corrosion performance
title_full_unstemmed Two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings with excellent anti-corrosion performance
title_short Two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings with excellent anti-corrosion performance
title_sort two-dimensional lamellar polyimide/cardanol-based benzoxazine copper polymer composite coatings with excellent anti-corrosion performance
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8988169/
https://www.ncbi.nlm.nih.gov/pubmed/35425021
http://dx.doi.org/10.1039/d1ra08844k
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