Correlation of microstructural and chemical bonding of FeNi-rGO nanocomposites

This study used the chemical reduction method to synthesize iron-nickel (FeNi)-reduced graphene oxide (rGO) nanocomposites. FeNi-rGO nanocomposites were characterized by Scanning Electron Microscope (SEM), X-ray diffraction (XRD), Fourier Transform Infrared Spectroscopy (FTIR), Raman spectroscopy, U...

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Main Authors: Sambit Kumar Sahoo, Aishwarya Madhuri, Akash Saini, Sanketa Jena, Pukhrambam Sushma Devi, Soumyadeep Laha, Bibhu Prasad Swain
Format: Article
Language:English
Published: Elsevier 2023-12-01
Series:Journal of Alloys and Metallurgical Systems
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2949917823000354
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author Sambit Kumar Sahoo
Aishwarya Madhuri
Akash Saini
Sanketa Jena
Pukhrambam Sushma Devi
Soumyadeep Laha
Bibhu Prasad Swain
author_facet Sambit Kumar Sahoo
Aishwarya Madhuri
Akash Saini
Sanketa Jena
Pukhrambam Sushma Devi
Soumyadeep Laha
Bibhu Prasad Swain
author_sort Sambit Kumar Sahoo
collection DOAJ
description This study used the chemical reduction method to synthesize iron-nickel (FeNi)-reduced graphene oxide (rGO) nanocomposites. FeNi-rGO nanocomposites were characterized by Scanning Electron Microscope (SEM), X-ray diffraction (XRD), Fourier Transform Infrared Spectroscopy (FTIR), Raman spectroscopy, UV-Vis spectroscopy and Energy dispersive spectroscopy (EDX) to investigate morphology, structural, chemical bonding, optical and compositional study respectively. SEM images revealed the connective network of grains first increased from 186 nm to 295 nm for Fe(1)-rGO to Fe(0.6)Ni(0.4)-rGO and then decreased from 250 nm to 217 nm for Fe(0.4)Ni(0.6)-rGO to Ni(1)-rGO with increased wt% of Ni and decreased wt% of Fe. The crystallite size estimated by the Debye Scherrer equation and WH-plotting also ranged from 12.32 nm to 27.40 nm and 18.70 nm to 27.32 nm respectively, with the increase in Fe wt%. However, the micro-strain of FeNi-rGO altered between 0.00276 and 0.00578. The metallic oxide chemical bond was found to be shifted to a higher frequency with the addition of Ni indicating an increase in the backing of oxygen or carbon with the metal network. The carbon defect parameter, ID/IG varied between 1.40 and 2.48. EDX data analysis showed the presence of C, O, Fe and Ni as primary elements. An increase in the bandgap of nanocomposites in response to UV–visible radiation was observed with the increase in wt% of Ni.
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spelling doaj.art-77473bc8edd84983bf1da8046a5eb98c2024-01-27T07:14:20ZengElsevierJournal of Alloys and Metallurgical Systems2949-91782023-12-014100035Correlation of microstructural and chemical bonding of FeNi-rGO nanocompositesSambit Kumar Sahoo0Aishwarya Madhuri1Akash Saini2Sanketa Jena3Pukhrambam Sushma Devi4Soumyadeep Laha5Bibhu Prasad Swain6Department of Physics, National Institute of Technology, Imphal 795004, Manipur, IndiaDepartment of Physics, National Institute of Technology, Imphal 795004, Manipur, IndiaDepartment of Physics, National Institute of Technology, Imphal 795004, Manipur, IndiaDepartment of Physics, National Institute of Technology, Imphal 795004, Manipur, IndiaDepartment of Physics, National Institute of Technology, Imphal 795004, Manipur, IndiaUniversity Science Instrumentation Centre, North Bengal University, Darjeeling, West Bengal 734013, IndiaDepartment of Physics, National Institute of Technology, Imphal 795004, Manipur, India; Corresponding author.This study used the chemical reduction method to synthesize iron-nickel (FeNi)-reduced graphene oxide (rGO) nanocomposites. FeNi-rGO nanocomposites were characterized by Scanning Electron Microscope (SEM), X-ray diffraction (XRD), Fourier Transform Infrared Spectroscopy (FTIR), Raman spectroscopy, UV-Vis spectroscopy and Energy dispersive spectroscopy (EDX) to investigate morphology, structural, chemical bonding, optical and compositional study respectively. SEM images revealed the connective network of grains first increased from 186 nm to 295 nm for Fe(1)-rGO to Fe(0.6)Ni(0.4)-rGO and then decreased from 250 nm to 217 nm for Fe(0.4)Ni(0.6)-rGO to Ni(1)-rGO with increased wt% of Ni and decreased wt% of Fe. The crystallite size estimated by the Debye Scherrer equation and WH-plotting also ranged from 12.32 nm to 27.40 nm and 18.70 nm to 27.32 nm respectively, with the increase in Fe wt%. However, the micro-strain of FeNi-rGO altered between 0.00276 and 0.00578. The metallic oxide chemical bond was found to be shifted to a higher frequency with the addition of Ni indicating an increase in the backing of oxygen or carbon with the metal network. The carbon defect parameter, ID/IG varied between 1.40 and 2.48. EDX data analysis showed the presence of C, O, Fe and Ni as primary elements. An increase in the bandgap of nanocomposites in response to UV–visible radiation was observed with the increase in wt% of Ni.http://www.sciencedirect.com/science/article/pii/S2949917823000354FeNi-rGOXRDFTIRRaman spectroscopyEDXUV-Vis
spellingShingle Sambit Kumar Sahoo
Aishwarya Madhuri
Akash Saini
Sanketa Jena
Pukhrambam Sushma Devi
Soumyadeep Laha
Bibhu Prasad Swain
Correlation of microstructural and chemical bonding of FeNi-rGO nanocomposites
Journal of Alloys and Metallurgical Systems
FeNi-rGO
XRD
FTIR
Raman spectroscopy
EDX
UV-Vis
title Correlation of microstructural and chemical bonding of FeNi-rGO nanocomposites
title_full Correlation of microstructural and chemical bonding of FeNi-rGO nanocomposites
title_fullStr Correlation of microstructural and chemical bonding of FeNi-rGO nanocomposites
title_full_unstemmed Correlation of microstructural and chemical bonding of FeNi-rGO nanocomposites
title_short Correlation of microstructural and chemical bonding of FeNi-rGO nanocomposites
title_sort correlation of microstructural and chemical bonding of feni rgo nanocomposites
topic FeNi-rGO
XRD
FTIR
Raman spectroscopy
EDX
UV-Vis
url http://www.sciencedirect.com/science/article/pii/S2949917823000354
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