Corrosion Protection of Monel Alloy Coated with Graphene Quantum Dots Starts with a Surge
There has been an active interest in protecting metals and alloys using graphene coating. The mechanism by which corrosion protection occurs has not been well understood as the couple involved are both good electron conductors. In this work, we demonstrate that Monel alloy coated with graphene quant...
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doaj-33b2e47f45f849f1b6a0394ac42386132020-11-24T22:08:19ZengMDPI AGChemEngineering2305-70842019-09-01348010.3390/chemengineering3040080chemengineering3040080Corrosion Protection of Monel Alloy Coated with Graphene Quantum Dots Starts with a SurgeCharles Bopp0Kalathur Santhanam1School of Chemistry and Materials Science, Rochester Institute of Technology, Rochester, NY 14623, USASchool of Chemistry and Materials Science, Rochester Institute of Technology, Rochester, NY 14623, USAThere has been an active interest in protecting metals and alloys using graphene coating. The mechanism by which corrosion protection occurs has not been well understood as the couple involved are both good electron conductors. In this work, we demonstrate that Monel alloy coated with graphene quantum dots (GQD) changes the corrosion rate with a surge (increase) caused by the galvanic coupling of the two materials. This surge results in the protective layer formation on Monel to inhibit the corrosion. X-ray fluorescence spectrum of Monel (400) alloy showed the composition of it as Ni (67.05%) and Cu (29.42%). The Tafel experiments carried out in NaCl and Na<sub>2</sub>SO<sub>4</sub> electrolytes showed an initial enhancement of the corrosion rate followed by a decrease upon successive polarizations. Monel coated with graphene oxide (an insulator) shows no initial enhancement of corrosion rate; the coated samples showed a lower corrosion rate in comparison to the uncoated samples. X-ray fluorescence, Fourier Transform spectroscopy (FTIR) and Raman imaging studies have been carried out for understanding this transformation. Distinct peaks due to Ni-O stretching and Ni-O-H bending vibration were observed in the FTIR spectrum.https://www.mdpi.com/2305-7084/3/4/80corrosiongraphenetafelx-ray fluorescenceraman imagingfourier transform infrared spectroscopymonelnickel hydroxide |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Charles Bopp Kalathur Santhanam |
spellingShingle |
Charles Bopp Kalathur Santhanam Corrosion Protection of Monel Alloy Coated with Graphene Quantum Dots Starts with a Surge ChemEngineering corrosion graphene tafel x-ray fluorescence raman imaging fourier transform infrared spectroscopy monel nickel hydroxide |
author_facet |
Charles Bopp Kalathur Santhanam |
author_sort |
Charles Bopp |
title |
Corrosion Protection of Monel Alloy Coated with Graphene Quantum Dots Starts with a Surge |
title_short |
Corrosion Protection of Monel Alloy Coated with Graphene Quantum Dots Starts with a Surge |
title_full |
Corrosion Protection of Monel Alloy Coated with Graphene Quantum Dots Starts with a Surge |
title_fullStr |
Corrosion Protection of Monel Alloy Coated with Graphene Quantum Dots Starts with a Surge |
title_full_unstemmed |
Corrosion Protection of Monel Alloy Coated with Graphene Quantum Dots Starts with a Surge |
title_sort |
corrosion protection of monel alloy coated with graphene quantum dots starts with a surge |
publisher |
MDPI AG |
series |
ChemEngineering |
issn |
2305-7084 |
publishDate |
2019-09-01 |
description |
There has been an active interest in protecting metals and alloys using graphene coating. The mechanism by which corrosion protection occurs has not been well understood as the couple involved are both good electron conductors. In this work, we demonstrate that Monel alloy coated with graphene quantum dots (GQD) changes the corrosion rate with a surge (increase) caused by the galvanic coupling of the two materials. This surge results in the protective layer formation on Monel to inhibit the corrosion. X-ray fluorescence spectrum of Monel (400) alloy showed the composition of it as Ni (67.05%) and Cu (29.42%). The Tafel experiments carried out in NaCl and Na<sub>2</sub>SO<sub>4</sub> electrolytes showed an initial enhancement of the corrosion rate followed by a decrease upon successive polarizations. Monel coated with graphene oxide (an insulator) shows no initial enhancement of corrosion rate; the coated samples showed a lower corrosion rate in comparison to the uncoated samples. X-ray fluorescence, Fourier Transform spectroscopy (FTIR) and Raman imaging studies have been carried out for understanding this transformation. Distinct peaks due to Ni-O stretching and Ni-O-H bending vibration were observed in the FTIR spectrum. |
topic |
corrosion graphene tafel x-ray fluorescence raman imaging fourier transform infrared spectroscopy monel nickel hydroxide |
url |
https://www.mdpi.com/2305-7084/3/4/80 |
work_keys_str_mv |
AT charlesbopp corrosionprotectionofmonelalloycoatedwithgraphenequantumdotsstartswithasurge AT kalathursanthanam corrosionprotectionofmonelalloycoatedwithgraphenequantumdotsstartswithasurge |
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