Advanced anticorrosive coatings prepared from electroactive polyimide/graphene nanocomposites with synergistic effects of redox catalytic capability and gas barrier properties

In this study, electroactive polyimide (EPI)/graphene nanocomposite (EPGN) coatings were prepared by thermal imidization and then characterized by Fourier transformation infrared (FTIR) and transmission electron microscope (TEM). The redox behavior of the as-prepared EPGN materials was identified by...

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Main Authors: J. M. Yeh, K. C. Chang, H. I. Lu, C. H. Chang, C. H. Hsu, W. F. Ji, W. Y. Li, T. L. Chuang, W. R. Liu, M. H. Tsai
Format: Article
Language:English
Published: Budapest University of Technology 2014-04-01
Series:eXPRESS Polymer Letters
Subjects:
Online Access:http://www.expresspolymlett.com/letolt.php?file=EPL-0004907&mi=cd
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author J. M. Yeh
K. C. Chang
H. I. Lu
C. H. Chang
C. H. Hsu
W. F. Ji
W. Y. Li
T. L. Chuang
W. R. Liu
M. H. Tsai
author_facet J. M. Yeh
K. C. Chang
H. I. Lu
C. H. Chang
C. H. Hsu
W. F. Ji
W. Y. Li
T. L. Chuang
W. R. Liu
M. H. Tsai
author_sort J. M. Yeh
collection DOAJ
description In this study, electroactive polyimide (EPI)/graphene nanocomposite (EPGN) coatings were prepared by thermal imidization and then characterized by Fourier transformation infrared (FTIR) and transmission electron microscope (TEM). The redox behavior of the as-prepared EPGN materials was identified by in situ monitoring for cyclic voltammetry (CV) studies. Demonstrating that EPGN coatings provided advanced corrosion protection of cold-rolled steel (CRS) electrodes as compared to that of neat EPI coating. The superior corrosion protection of EPGN coatings over EPI coatings on CRS electrodes could be explained by the following two reasons. First, the redox catalytic capabilities of amino-capped aniline trimer (ACAT) units existing in the EPGN may induce the formation of passive metal oxide layers on the CRS electrode, as indicated by scanning electron microscope (SEM) and electron spectroscopy for chemical analysis (ESCA) studies. Moreover, the well-dispersed carboxyl-graphene nanosheets embedded in the EPGN matrix hinder gas migration exponentially. This would explain enhanced oxygen barrier properties of EPGN, as indicated by gas permeability analysis (GPA) studies.
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spelling doaj.art-6d999ef7bb5e4191b34536a97d1319832022-12-22T02:12:33ZengBudapest University of TechnologyeXPRESS Polymer Letters1788-618X2014-04-018424325510.3144/expresspolymlett.2014.28Advanced anticorrosive coatings prepared from electroactive polyimide/graphene nanocomposites with synergistic effects of redox catalytic capability and gas barrier propertiesJ. M. YehK. C. ChangH. I. LuC. H. ChangC. H. HsuW. F. JiW. Y. LiT. L. ChuangW. R. LiuM. H. TsaiIn this study, electroactive polyimide (EPI)/graphene nanocomposite (EPGN) coatings were prepared by thermal imidization and then characterized by Fourier transformation infrared (FTIR) and transmission electron microscope (TEM). The redox behavior of the as-prepared EPGN materials was identified by in situ monitoring for cyclic voltammetry (CV) studies. Demonstrating that EPGN coatings provided advanced corrosion protection of cold-rolled steel (CRS) electrodes as compared to that of neat EPI coating. The superior corrosion protection of EPGN coatings over EPI coatings on CRS electrodes could be explained by the following two reasons. First, the redox catalytic capabilities of amino-capped aniline trimer (ACAT) units existing in the EPGN may induce the formation of passive metal oxide layers on the CRS electrode, as indicated by scanning electron microscope (SEM) and electron spectroscopy for chemical analysis (ESCA) studies. Moreover, the well-dispersed carboxyl-graphene nanosheets embedded in the EPGN matrix hinder gas migration exponentially. This would explain enhanced oxygen barrier properties of EPGN, as indicated by gas permeability analysis (GPA) studies.http://www.expresspolymlett.com/letolt.php?file=EPL-0004907&mi=cdNanocompositeselectroactivepolyimidegrapheneanticorrosion
spellingShingle J. M. Yeh
K. C. Chang
H. I. Lu
C. H. Chang
C. H. Hsu
W. F. Ji
W. Y. Li
T. L. Chuang
W. R. Liu
M. H. Tsai
Advanced anticorrosive coatings prepared from electroactive polyimide/graphene nanocomposites with synergistic effects of redox catalytic capability and gas barrier properties
eXPRESS Polymer Letters
Nanocomposites
electroactive
polyimide
graphene
anticorrosion
title Advanced anticorrosive coatings prepared from electroactive polyimide/graphene nanocomposites with synergistic effects of redox catalytic capability and gas barrier properties
title_full Advanced anticorrosive coatings prepared from electroactive polyimide/graphene nanocomposites with synergistic effects of redox catalytic capability and gas barrier properties
title_fullStr Advanced anticorrosive coatings prepared from electroactive polyimide/graphene nanocomposites with synergistic effects of redox catalytic capability and gas barrier properties
title_full_unstemmed Advanced anticorrosive coatings prepared from electroactive polyimide/graphene nanocomposites with synergistic effects of redox catalytic capability and gas barrier properties
title_short Advanced anticorrosive coatings prepared from electroactive polyimide/graphene nanocomposites with synergistic effects of redox catalytic capability and gas barrier properties
title_sort advanced anticorrosive coatings prepared from electroactive polyimide graphene nanocomposites with synergistic effects of redox catalytic capability and gas barrier properties
topic Nanocomposites
electroactive
polyimide
graphene
anticorrosion
url http://www.expresspolymlett.com/letolt.php?file=EPL-0004907&mi=cd
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