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Electrochemical Comparison of SAN/PANI/FLG and ZnO/GO Coated Cast Iron Subject to Corrosive Environments

ZnO/GO (Graphene Oxide) and SAN (Styrene Acrylonitrile)/PANI (Polyaniline)/FLG (Few Layers Graphene) nanocomposite coatings were produced by solution casting and sol-gel methods, respectively, to enhance corrosion resistance of ferrous based materials. Corrosive seawater and ‘produced crude oil wate...

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Autores principales: Ahmed, Muhammad Khitab, Shahid, Muhammad, Khan, Zulfiqar Ahmad, Ammar, Ameen Uddin, Saboor, Abdul, Khalid, Amir, Hayat, Asad, Saeed, Adil, Koohgilani, Mehran
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6267342/
https://www.ncbi.nlm.nih.gov/pubmed/30423876
http://dx.doi.org/10.3390/ma11112239
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author Ahmed, Muhammad Khitab
Shahid, Muhammad
Khan, Zulfiqar Ahmad
Ammar, Ameen Uddin
Saboor, Abdul
Khalid, Amir
Hayat, Asad
Saeed, Adil
Koohgilani, Mehran
author_facet Ahmed, Muhammad Khitab
Shahid, Muhammad
Khan, Zulfiqar Ahmad
Ammar, Ameen Uddin
Saboor, Abdul
Khalid, Amir
Hayat, Asad
Saeed, Adil
Koohgilani, Mehran
author_sort Ahmed, Muhammad Khitab
collection PubMed
description ZnO/GO (Graphene Oxide) and SAN (Styrene Acrylonitrile)/PANI (Polyaniline)/FLG (Few Layers Graphene) nanocomposite coatings were produced by solution casting and sol-gel methods, respectively, to enhance corrosion resistance of ferrous based materials. Corrosive seawater and ‘produced crude oil water’ environments were selected as electrolytes for this study. Impedance and coating capacitance values obtained from Electrochemical Impedance Spectroscopy (EIS) Alternating Current (AC technique) showed enhanced corrosion resistance of nanocomposites coatings in the corrosive environments. Tafel scan Direct Current (DC technique) was used to find the corrosion rate of nanocomposite coating. SAN/PANI/FLG coating reduced the corrosion of bare metal up to 90% in seawater whereas ZnO/GO suppressed the corrosion up to 75% having the impedance value of 100 Ω. In produced water of crude oil, SAN/PANI/FLG reduced the corrosion up to 95% while ZnO/GO suppressed the corrosion up to 10%. Hybrid composites of SAN/PANI/FLG coatings have demonstrated better performances compared to ZnO/GO in the corrosive environments under investigation. This study provides fabrication of state-of-the-art novel anti corrosive nanocomposite coatings for a wide range of industrial applications. Reduced corrosion will result in increased service lifetime, durability and reliability of components and system and will in turn lead to significant cost savings.
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spelling pubmed-62673422018-12-17 Electrochemical Comparison of SAN/PANI/FLG and ZnO/GO Coated Cast Iron Subject to Corrosive Environments Ahmed, Muhammad Khitab Shahid, Muhammad Khan, Zulfiqar Ahmad Ammar, Ameen Uddin Saboor, Abdul Khalid, Amir Hayat, Asad Saeed, Adil Koohgilani, Mehran Materials (Basel) Article ZnO/GO (Graphene Oxide) and SAN (Styrene Acrylonitrile)/PANI (Polyaniline)/FLG (Few Layers Graphene) nanocomposite coatings were produced by solution casting and sol-gel methods, respectively, to enhance corrosion resistance of ferrous based materials. Corrosive seawater and ‘produced crude oil water’ environments were selected as electrolytes for this study. Impedance and coating capacitance values obtained from Electrochemical Impedance Spectroscopy (EIS) Alternating Current (AC technique) showed enhanced corrosion resistance of nanocomposites coatings in the corrosive environments. Tafel scan Direct Current (DC technique) was used to find the corrosion rate of nanocomposite coating. SAN/PANI/FLG coating reduced the corrosion of bare metal up to 90% in seawater whereas ZnO/GO suppressed the corrosion up to 75% having the impedance value of 100 Ω. In produced water of crude oil, SAN/PANI/FLG reduced the corrosion up to 95% while ZnO/GO suppressed the corrosion up to 10%. Hybrid composites of SAN/PANI/FLG coatings have demonstrated better performances compared to ZnO/GO in the corrosive environments under investigation. This study provides fabrication of state-of-the-art novel anti corrosive nanocomposite coatings for a wide range of industrial applications. Reduced corrosion will result in increased service lifetime, durability and reliability of components and system and will in turn lead to significant cost savings. MDPI 2018-11-11 /pmc/articles/PMC6267342/ /pubmed/30423876 http://dx.doi.org/10.3390/ma11112239 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ahmed, Muhammad Khitab
Shahid, Muhammad
Khan, Zulfiqar Ahmad
Ammar, Ameen Uddin
Saboor, Abdul
Khalid, Amir
Hayat, Asad
Saeed, Adil
Koohgilani, Mehran
Electrochemical Comparison of SAN/PANI/FLG and ZnO/GO Coated Cast Iron Subject to Corrosive Environments
title Electrochemical Comparison of SAN/PANI/FLG and ZnO/GO Coated Cast Iron Subject to Corrosive Environments
title_full Electrochemical Comparison of SAN/PANI/FLG and ZnO/GO Coated Cast Iron Subject to Corrosive Environments
title_fullStr Electrochemical Comparison of SAN/PANI/FLG and ZnO/GO Coated Cast Iron Subject to Corrosive Environments
title_full_unstemmed Electrochemical Comparison of SAN/PANI/FLG and ZnO/GO Coated Cast Iron Subject to Corrosive Environments
title_short Electrochemical Comparison of SAN/PANI/FLG and ZnO/GO Coated Cast Iron Subject to Corrosive Environments
title_sort electrochemical comparison of san/pani/flg and zno/go coated cast iron subject to corrosive environments
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6267342/
https://www.ncbi.nlm.nih.gov/pubmed/30423876
http://dx.doi.org/10.3390/ma11112239
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