Strain-mediated electrical and optical properties of novel lead-free CuFe2O4–KNbO3 nanocomposite solid solutions: A combined experimental and Density Functional Theory studies

This article summarizes the strain-mediated electrical and optical properties of novel lead-free xCuFe2O4 (1 − x) KNbO3 (x = 0.2, 0.3, and 0.4) multiferroic nanocomposite through a solid state route. X-ray diffraction analysis divulges the influence of interfacial strain in the KNbO3–CuFe2O4 matrix...

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Published in:Microscopy Research and Technique
Main Author: Shameem Banu I.B.; Raman R.; Mamat M.H.; Komalavalli P.; Poornima B.H.; Divyalakshmi S.; Sathik Basha S.; Sathya Priya A.; Hussain S.
Format: Article
Language:English
Published: John Wiley and Sons Inc 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85131325402&doi=10.1002%2fjemt.24172&partnerID=40&md5=68978fbaa33f5548982518b976e6f721
id 2-s2.0-85131325402
spelling 2-s2.0-85131325402
Shameem Banu I.B.; Raman R.; Mamat M.H.; Komalavalli P.; Poornima B.H.; Divyalakshmi S.; Sathik Basha S.; Sathya Priya A.; Hussain S.
Strain-mediated electrical and optical properties of novel lead-free CuFe2O4–KNbO3 nanocomposite solid solutions: A combined experimental and Density Functional Theory studies
2022
Microscopy Research and Technique
85
9
10.1002/jemt.24172
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85131325402&doi=10.1002%2fjemt.24172&partnerID=40&md5=68978fbaa33f5548982518b976e6f721
This article summarizes the strain-mediated electrical and optical properties of novel lead-free xCuFe2O4 (1 − x) KNbO3 (x = 0.2, 0.3, and 0.4) multiferroic nanocomposite through a solid state route. X-ray diffraction analysis divulges the influence of interfacial strain in the KNbO3–CuFe2O4 matrix and shows the coexistence of orthorhombic and cubic spinel phases, respectively. Morphological analysis reveals that the average particle size of 0.3CuFe2O4–0.7KNbO3 is 25 nm which is smaller than the other two nanocomposites. The UV–visible absorption studies and Raman spectroscopy of 0.3CuFe2O4–0.7KNbO3 nanocomposite present the high energy bandgap and electro coupling of KNbO3 and CuFe2O4 phases. The DFT theoretical bandgap behaviors of all the three nanocomposites synchronize with the experimental bandgap results. Dielectric, ferroelectric and magnetoelectric behaviors are also improved in 0.3CuFe2O4–0.7KNbO3 nanocomposite as compared to pristine KNbO3 and the other two nanocomposites. Highlights: This article summarizes the strain-mediated electrical and optical properties of novel lead-free xCuFe2O4–(1 − x) KNbO3 (x = 0.2, 0.3, and 0.4) multiferroic nanocomposite through a solid state route. X-ray diffraction analysis divulges the influence of interfacial strain in the KNbO3–CuFe2O4 matrix and shows the coexistence of orthorhombic and cubic spinel phases, respectively. The 0.3CuFe2O4–0.7 KNbO3 nanocomposite shows a remarkable increase in the optical bandgap, remnant polarization, dielectric permittivity, and magnetoelectric coefficient compared to the other two nanocomposites. DFT calculations on KNbO3–CuFe2O4 matrix reveal the impact of diffusion between two phases and support the bandgap experimental results. © 2022 Wiley Periodicals LLC.
John Wiley and Sons Inc
1059910X
English
Article

author Shameem Banu I.B.; Raman R.; Mamat M.H.; Komalavalli P.; Poornima B.H.; Divyalakshmi S.; Sathik Basha S.; Sathya Priya A.; Hussain S.
spellingShingle Shameem Banu I.B.; Raman R.; Mamat M.H.; Komalavalli P.; Poornima B.H.; Divyalakshmi S.; Sathik Basha S.; Sathya Priya A.; Hussain S.
Strain-mediated electrical and optical properties of novel lead-free CuFe2O4–KNbO3 nanocomposite solid solutions: A combined experimental and Density Functional Theory studies
author_facet Shameem Banu I.B.; Raman R.; Mamat M.H.; Komalavalli P.; Poornima B.H.; Divyalakshmi S.; Sathik Basha S.; Sathya Priya A.; Hussain S.
author_sort Shameem Banu I.B.; Raman R.; Mamat M.H.; Komalavalli P.; Poornima B.H.; Divyalakshmi S.; Sathik Basha S.; Sathya Priya A.; Hussain S.
title Strain-mediated electrical and optical properties of novel lead-free CuFe2O4–KNbO3 nanocomposite solid solutions: A combined experimental and Density Functional Theory studies
title_short Strain-mediated electrical and optical properties of novel lead-free CuFe2O4–KNbO3 nanocomposite solid solutions: A combined experimental and Density Functional Theory studies
title_full Strain-mediated electrical and optical properties of novel lead-free CuFe2O4–KNbO3 nanocomposite solid solutions: A combined experimental and Density Functional Theory studies
title_fullStr Strain-mediated electrical and optical properties of novel lead-free CuFe2O4–KNbO3 nanocomposite solid solutions: A combined experimental and Density Functional Theory studies
title_full_unstemmed Strain-mediated electrical and optical properties of novel lead-free CuFe2O4–KNbO3 nanocomposite solid solutions: A combined experimental and Density Functional Theory studies
title_sort Strain-mediated electrical and optical properties of novel lead-free CuFe2O4–KNbO3 nanocomposite solid solutions: A combined experimental and Density Functional Theory studies
publishDate 2022
container_title Microscopy Research and Technique
container_volume 85
container_issue 9
doi_str_mv 10.1002/jemt.24172
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85131325402&doi=10.1002%2fjemt.24172&partnerID=40&md5=68978fbaa33f5548982518b976e6f721
description This article summarizes the strain-mediated electrical and optical properties of novel lead-free xCuFe2O4 (1 − x) KNbO3 (x = 0.2, 0.3, and 0.4) multiferroic nanocomposite through a solid state route. X-ray diffraction analysis divulges the influence of interfacial strain in the KNbO3–CuFe2O4 matrix and shows the coexistence of orthorhombic and cubic spinel phases, respectively. Morphological analysis reveals that the average particle size of 0.3CuFe2O4–0.7KNbO3 is 25 nm which is smaller than the other two nanocomposites. The UV–visible absorption studies and Raman spectroscopy of 0.3CuFe2O4–0.7KNbO3 nanocomposite present the high energy bandgap and electro coupling of KNbO3 and CuFe2O4 phases. The DFT theoretical bandgap behaviors of all the three nanocomposites synchronize with the experimental bandgap results. Dielectric, ferroelectric and magnetoelectric behaviors are also improved in 0.3CuFe2O4–0.7KNbO3 nanocomposite as compared to pristine KNbO3 and the other two nanocomposites. Highlights: This article summarizes the strain-mediated electrical and optical properties of novel lead-free xCuFe2O4–(1 − x) KNbO3 (x = 0.2, 0.3, and 0.4) multiferroic nanocomposite through a solid state route. X-ray diffraction analysis divulges the influence of interfacial strain in the KNbO3–CuFe2O4 matrix and shows the coexistence of orthorhombic and cubic spinel phases, respectively. The 0.3CuFe2O4–0.7 KNbO3 nanocomposite shows a remarkable increase in the optical bandgap, remnant polarization, dielectric permittivity, and magnetoelectric coefficient compared to the other two nanocomposites. DFT calculations on KNbO3–CuFe2O4 matrix reveal the impact of diffusion between two phases and support the bandgap experimental results. © 2022 Wiley Periodicals LLC.
publisher John Wiley and Sons Inc
issn 1059910X
language English
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