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Pressure Effects on 3d(n) (n=4, 9) Insulating Compounds: Long Axis Switch in Na(3)MnF(6) not Due to the Jahn‐Teller Effect

The pressure‐induced switch of the long axis of MnF(6) (3−) units in the monoclinic Na(3)MnF(6) compound and Mn(3+)‐doped Na(3)FeF(6) is explored with the help of first principles calculations. Although the switch phenomenon is usually related to the Jahn‐Teller effect, we show that, due to symmetry...

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Autores principales: Sánchez‐Movellán, Inés, Carrasco‐Busturia, David, García‐Lastra, Juan M., García‐Fernández, Pablo, Aramburu, José A., Moreno, Miguel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9401062/
https://www.ncbi.nlm.nih.gov/pubmed/35638136
http://dx.doi.org/10.1002/chem.202200948
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author Sánchez‐Movellán, Inés
Carrasco‐Busturia, David
García‐Lastra, Juan M.
García‐Fernández, Pablo
Aramburu, José A.
Moreno, Miguel
author_facet Sánchez‐Movellán, Inés
Carrasco‐Busturia, David
García‐Lastra, Juan M.
García‐Fernández, Pablo
Aramburu, José A.
Moreno, Miguel
author_sort Sánchez‐Movellán, Inés
collection PubMed
description The pressure‐induced switch of the long axis of MnF(6) (3−) units in the monoclinic Na(3)MnF(6) compound and Mn(3+)‐doped Na(3)FeF(6) is explored with the help of first principles calculations. Although the switch phenomenon is usually related to the Jahn‐Teller effect, we show that, due to symmetry reasons, it cannot take place in 3d(n) (n=4, 9) systems displaying a static Jahn‐Teller effect. By contrast, we prove that in Na(3)MnF(6) the switch arises from the anisotropic response of the low symmetry lattice to hydrostatic pressure. Indeed, while the long axis of a MnF(6) (3−) unit at ambient pressure corresponds to the Mn(3+)−F(3) (−) direction, close to the crystal c axis, at 2.79 GPa the c axis is reduced by 0.29 Å while b is unmodified. This fact is shown to force a change of the HOMO wavefunction favoring that the long axis becomes the Mn(3+)−F(2) (−) direction, not far from crystal b axis, after the subsequent relaxation process. The origin of the different d‐d transitions observed for Na(3)MnF(6) and CrF(2) at ambient pressure is also discussed together with changes induced by pressure in Na(3)MnF(6). The present work opens a window for understanding the pressure effects upon low symmetry insulating compounds containing d(4) or d(9) ions.
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spelling pubmed-94010622022-08-26 Pressure Effects on 3d(n) (n=4, 9) Insulating Compounds: Long Axis Switch in Na(3)MnF(6) not Due to the Jahn‐Teller Effect Sánchez‐Movellán, Inés Carrasco‐Busturia, David García‐Lastra, Juan M. García‐Fernández, Pablo Aramburu, José A. Moreno, Miguel Chemistry Research Articles The pressure‐induced switch of the long axis of MnF(6) (3−) units in the monoclinic Na(3)MnF(6) compound and Mn(3+)‐doped Na(3)FeF(6) is explored with the help of first principles calculations. Although the switch phenomenon is usually related to the Jahn‐Teller effect, we show that, due to symmetry reasons, it cannot take place in 3d(n) (n=4, 9) systems displaying a static Jahn‐Teller effect. By contrast, we prove that in Na(3)MnF(6) the switch arises from the anisotropic response of the low symmetry lattice to hydrostatic pressure. Indeed, while the long axis of a MnF(6) (3−) unit at ambient pressure corresponds to the Mn(3+)−F(3) (−) direction, close to the crystal c axis, at 2.79 GPa the c axis is reduced by 0.29 Å while b is unmodified. This fact is shown to force a change of the HOMO wavefunction favoring that the long axis becomes the Mn(3+)−F(2) (−) direction, not far from crystal b axis, after the subsequent relaxation process. The origin of the different d‐d transitions observed for Na(3)MnF(6) and CrF(2) at ambient pressure is also discussed together with changes induced by pressure in Na(3)MnF(6). The present work opens a window for understanding the pressure effects upon low symmetry insulating compounds containing d(4) or d(9) ions. John Wiley and Sons Inc. 2022-06-14 2022-08-01 /pmc/articles/PMC9401062/ /pubmed/35638136 http://dx.doi.org/10.1002/chem.202200948 Text en © 2022 The Authors. Chemistry - A European Journal published by Wiley-VCH GmbH https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Articles
Sánchez‐Movellán, Inés
Carrasco‐Busturia, David
García‐Lastra, Juan M.
García‐Fernández, Pablo
Aramburu, José A.
Moreno, Miguel
Pressure Effects on 3d(n) (n=4, 9) Insulating Compounds: Long Axis Switch in Na(3)MnF(6) not Due to the Jahn‐Teller Effect
title Pressure Effects on 3d(n) (n=4, 9) Insulating Compounds: Long Axis Switch in Na(3)MnF(6) not Due to the Jahn‐Teller Effect
title_full Pressure Effects on 3d(n) (n=4, 9) Insulating Compounds: Long Axis Switch in Na(3)MnF(6) not Due to the Jahn‐Teller Effect
title_fullStr Pressure Effects on 3d(n) (n=4, 9) Insulating Compounds: Long Axis Switch in Na(3)MnF(6) not Due to the Jahn‐Teller Effect
title_full_unstemmed Pressure Effects on 3d(n) (n=4, 9) Insulating Compounds: Long Axis Switch in Na(3)MnF(6) not Due to the Jahn‐Teller Effect
title_short Pressure Effects on 3d(n) (n=4, 9) Insulating Compounds: Long Axis Switch in Na(3)MnF(6) not Due to the Jahn‐Teller Effect
title_sort pressure effects on 3d(n) (n=4, 9) insulating compounds: long axis switch in na(3)mnf(6) not due to the jahn‐teller effect
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9401062/
https://www.ncbi.nlm.nih.gov/pubmed/35638136
http://dx.doi.org/10.1002/chem.202200948
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