Structural Stability and Magnetic Ordering in BiFeO3 Perovskite Oxide: A Comparative Study GGA+U vs L(S)DA+U

Ab initio calculations of BiFeO3 magnetic perovskite are carried. Accurate density functional theory calculations were performed considering a U-Hubbard correction (DFT+U) to account for on-site Coulomb interactions of the 3d-Fe states. We have applied the Full-potential linearized augmented plane w...

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Main Authors: Derras M., Hamdad N.
Format: Article
Language:English
Published: Sciendo 2020-12-01
Series:Annals of West University of Timisoara: Physics
Subjects:
Online Access:https://doi.org/10.2478/awutp-2020-0004
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spelling doaj-659128fa3c38495aa30249afe769668f2021-09-06T19:41:29ZengSciendoAnnals of West University of Timisoara: Physics1224-97182020-12-01621527010.2478/awutp-2020-0004awutp-2020-0004Structural Stability and Magnetic Ordering in BiFeO3 Perovskite Oxide: A Comparative Study GGA+U vs L(S)DA+UDerras M.0Hamdad N.1Djillali Liabès University of Sidi Bel-Abbes, Faculty of Technology, Sidi Bel-Abbès22000, AlgeriaDjillali Liabès University of Sidi Bel-Abbes, Faculty of Technology, Sidi Bel-Abbès22000, AlgeriaAb initio calculations of BiFeO3 magnetic perovskite are carried. Accurate density functional theory calculations were performed considering a U-Hubbard correction (DFT+U) to account for on-site Coulomb interactions of the 3d-Fe states. We have applied the Full-potential linearized augmented plane waves (FP-LAPW) method. Exchange-correlation effects are treated using the Local Spin Density approximation (L(S)DA+U) vs generalized gradient approximations (GGA+U). Equilibrium lattices agree very well with other theoretical and experimental data. The magnetization energy differences between Spin Up and Spin Dn states are small. Spin effect and magnetic moment obtained from subsequent (L(S)DA+U) and (GGA+U) calculations are also discussed in different magnetic configurations: The Ferromagnetic cubic phase (Pm-3m), The A-type Antiferromagnetic (P4/mmc) and The G-type Antiferromagnetic (Fm-3m). The nature of magnetism arises mainly from the Fe-site exhibiting a G-type antiferromagnetic ordering. The electronic structure shows that BiFeO3 has a metallic band gap. This multiferroic exhibit strong hybridization of the 3d-Fe and 2p-O orbitals. Therefore, the Multiferroic BiFeO3 perovskite has driven significant research interest due to their promising technological potential. It’s a good candidate for potential applications in spintronic, and to aid the development of the next generation of data storage and multi-functional technological devices.https://doi.org/10.2478/awutp-2020-0004perovskite oxidegga+ulsda+umagnetic momentand electronic structure
collection DOAJ
language English
format Article
sources DOAJ
author Derras M.
Hamdad N.
spellingShingle Derras M.
Hamdad N.
Structural Stability and Magnetic Ordering in BiFeO3 Perovskite Oxide: A Comparative Study GGA+U vs L(S)DA+U
Annals of West University of Timisoara: Physics
perovskite oxide
gga+u
lsda+u
magnetic moment
and electronic structure
author_facet Derras M.
Hamdad N.
author_sort Derras M.
title Structural Stability and Magnetic Ordering in BiFeO3 Perovskite Oxide: A Comparative Study GGA+U vs L(S)DA+U
title_short Structural Stability and Magnetic Ordering in BiFeO3 Perovskite Oxide: A Comparative Study GGA+U vs L(S)DA+U
title_full Structural Stability and Magnetic Ordering in BiFeO3 Perovskite Oxide: A Comparative Study GGA+U vs L(S)DA+U
title_fullStr Structural Stability and Magnetic Ordering in BiFeO3 Perovskite Oxide: A Comparative Study GGA+U vs L(S)DA+U
title_full_unstemmed Structural Stability and Magnetic Ordering in BiFeO3 Perovskite Oxide: A Comparative Study GGA+U vs L(S)DA+U
title_sort structural stability and magnetic ordering in bifeo3 perovskite oxide: a comparative study gga+u vs l(s)da+u
publisher Sciendo
series Annals of West University of Timisoara: Physics
issn 1224-9718
publishDate 2020-12-01
description Ab initio calculations of BiFeO3 magnetic perovskite are carried. Accurate density functional theory calculations were performed considering a U-Hubbard correction (DFT+U) to account for on-site Coulomb interactions of the 3d-Fe states. We have applied the Full-potential linearized augmented plane waves (FP-LAPW) method. Exchange-correlation effects are treated using the Local Spin Density approximation (L(S)DA+U) vs generalized gradient approximations (GGA+U). Equilibrium lattices agree very well with other theoretical and experimental data. The magnetization energy differences between Spin Up and Spin Dn states are small. Spin effect and magnetic moment obtained from subsequent (L(S)DA+U) and (GGA+U) calculations are also discussed in different magnetic configurations: The Ferromagnetic cubic phase (Pm-3m), The A-type Antiferromagnetic (P4/mmc) and The G-type Antiferromagnetic (Fm-3m). The nature of magnetism arises mainly from the Fe-site exhibiting a G-type antiferromagnetic ordering. The electronic structure shows that BiFeO3 has a metallic band gap. This multiferroic exhibit strong hybridization of the 3d-Fe and 2p-O orbitals. Therefore, the Multiferroic BiFeO3 perovskite has driven significant research interest due to their promising technological potential. It’s a good candidate for potential applications in spintronic, and to aid the development of the next generation of data storage and multi-functional technological devices.
topic perovskite oxide
gga+u
lsda+u
magnetic moment
and electronic structure
url https://doi.org/10.2478/awutp-2020-0004
work_keys_str_mv AT derrasm structuralstabilityandmagneticorderinginbifeo3perovskiteoxideacomparativestudyggauvslsdau
AT hamdadn structuralstabilityandmagneticorderinginbifeo3perovskiteoxideacomparativestudyggauvslsdau
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