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Group Theory Analysis to Study Phase Transitions of Quasi-2D Sr$_{3}$Hf$_{2}$O$_{7}$

We present an $ab-initio$ study performed in the framework of density functional theory, group-subgroup symmetry analysis and lattice dynamics, to probe the octahedral distortions, which occur during the structural phase transitions of the quasi-2D layered perovskite Sr$_{3}$Hf$_{2}$O$_{7}$ compound...

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Autores principales: Lora da Silva, Estelina, Gerami, Adeleh Mokhles, Neenu Lekshmi, P, Marcondes, Michel L, Assali, Lucy V C, Petrilli, Helena M, Correia, Joao Guilherme, Lopes, Armandina M L, Araújo, João P
Lenguaje:eng
Publicado: 2021
Acceso en línea:https://dx.doi.org/10.3390/nano11040897
http://cds.cern.ch/record/2803909
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author Lora da Silva, Estelina
Gerami, Adeleh Mokhles
Neenu Lekshmi, P
Marcondes, Michel L
Assali, Lucy V C
Petrilli, Helena M
Correia, Joao Guilherme
Lopes, Armandina M L
Araújo, João P
author_facet Lora da Silva, Estelina
Gerami, Adeleh Mokhles
Neenu Lekshmi, P
Marcondes, Michel L
Assali, Lucy V C
Petrilli, Helena M
Correia, Joao Guilherme
Lopes, Armandina M L
Araújo, João P
author_sort Lora da Silva, Estelina
collection CERN
description We present an $ab-initio$ study performed in the framework of density functional theory, group-subgroup symmetry analysis and lattice dynamics, to probe the octahedral distortions, which occur during the structural phase transitions of the quasi-2D layered perovskite Sr$_{3}$Hf$_{2}$O$_{7}$ compound. Such a system is characterized by a high-temperature I4/mmm centrosymmetric structure and a ground-state Cmc21 ferroelectric phase. We have probed potential candidate polymorphs that may form the $I4/mmm$ → $Cmc2$$_{1}$ transition pathways, namely $Fmm2$, $Ccce$, $Cmca$ and $Cmcm$. We found that the band gap widths increase as the symmetry decreases, with the ground-state structure presenting the largest gap width (∼5.95 eV). By probing the Partial Density of States, we observe a direct relation regarding the tilts and rotations of the oxygen perovskite cages as the transition occurs; these show large variations mostly of the O $p$-states which contribute mostly to the valence band maximum. Moreover, by analyzing the hyperfine parameters, namely the Electric Field Gradients and asymmetric parameters, we observe variations as the transition occurs, from which it is possible to identify the most plausible intermediate phases. We have also computed the macroscopic polarization and confirm that the $Cmc2$$_{1}$ phase is ferroelectric with a value of spontaneous polarization of 0.0478 C/m$^{2}$. The ferroelectricity of the ground-state $Cmc2$$_{1}$1 system arises due to a second order parameter related to the coupling of the rotation and tilts of the O perovskite cages together with the Sr displacements.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2021
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spelling cern-28039092022-03-15T22:43:51Zdoi:10.3390/nano11040897http://cds.cern.ch/record/2803909engLora da Silva, EstelinaGerami, Adeleh MokhlesNeenu Lekshmi, PMarcondes, Michel LAssali, Lucy V CPetrilli, Helena MCorreia, Joao GuilhermeLopes, Armandina M LAraújo, João PGroup Theory Analysis to Study Phase Transitions of Quasi-2D Sr$_{3}$Hf$_{2}$O$_{7}$We present an $ab-initio$ study performed in the framework of density functional theory, group-subgroup symmetry analysis and lattice dynamics, to probe the octahedral distortions, which occur during the structural phase transitions of the quasi-2D layered perovskite Sr$_{3}$Hf$_{2}$O$_{7}$ compound. Such a system is characterized by a high-temperature I4/mmm centrosymmetric structure and a ground-state Cmc21 ferroelectric phase. We have probed potential candidate polymorphs that may form the $I4/mmm$ → $Cmc2$$_{1}$ transition pathways, namely $Fmm2$, $Ccce$, $Cmca$ and $Cmcm$. We found that the band gap widths increase as the symmetry decreases, with the ground-state structure presenting the largest gap width (∼5.95 eV). By probing the Partial Density of States, we observe a direct relation regarding the tilts and rotations of the oxygen perovskite cages as the transition occurs; these show large variations mostly of the O $p$-states which contribute mostly to the valence band maximum. Moreover, by analyzing the hyperfine parameters, namely the Electric Field Gradients and asymmetric parameters, we observe variations as the transition occurs, from which it is possible to identify the most plausible intermediate phases. We have also computed the macroscopic polarization and confirm that the $Cmc2$$_{1}$ phase is ferroelectric with a value of spontaneous polarization of 0.0478 C/m$^{2}$. The ferroelectricity of the ground-state $Cmc2$$_{1}$1 system arises due to a second order parameter related to the coupling of the rotation and tilts of the O perovskite cages together with the Sr displacements.oai:cds.cern.ch:28039092021
spellingShingle Lora da Silva, Estelina
Gerami, Adeleh Mokhles
Neenu Lekshmi, P
Marcondes, Michel L
Assali, Lucy V C
Petrilli, Helena M
Correia, Joao Guilherme
Lopes, Armandina M L
Araújo, João P
Group Theory Analysis to Study Phase Transitions of Quasi-2D Sr$_{3}$Hf$_{2}$O$_{7}$
title Group Theory Analysis to Study Phase Transitions of Quasi-2D Sr$_{3}$Hf$_{2}$O$_{7}$
title_full Group Theory Analysis to Study Phase Transitions of Quasi-2D Sr$_{3}$Hf$_{2}$O$_{7}$
title_fullStr Group Theory Analysis to Study Phase Transitions of Quasi-2D Sr$_{3}$Hf$_{2}$O$_{7}$
title_full_unstemmed Group Theory Analysis to Study Phase Transitions of Quasi-2D Sr$_{3}$Hf$_{2}$O$_{7}$
title_short Group Theory Analysis to Study Phase Transitions of Quasi-2D Sr$_{3}$Hf$_{2}$O$_{7}$
title_sort group theory analysis to study phase transitions of quasi-2d sr$_{3}$hf$_{2}$o$_{7}$
url https://dx.doi.org/10.3390/nano11040897
http://cds.cern.ch/record/2803909
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