Magnetostructural Coupling at the Néel point in YNiO3 Single Crystals

Fuente: arXiv
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Hauptverfasser: Gawryluk, Dariusz J., Klein, Y. Maximilian, Scatena, Rebecca, Shang, Tian, Sibille, Romain, Sheptyakov, Denis, Casati, Nicola, Linden, Anthony, Chernyshov, Dmitry, Kozłowski, Mirosław, Dłużewski, Piotr, Rossell, Marta D., Macchi, Piero, Medarde, Marisa
Format: Preprint
Veröffentlicht: 2024
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author Gawryluk, Dariusz J.
Klein, Y. Maximilian
Scatena, Rebecca
Shang, Tian
Sibille, Romain
Sheptyakov, Denis
Casati, Nicola
Linden, Anthony
Chernyshov, Dmitry
Kozłowski, Mirosław
Dłużewski, Piotr
Rossell, Marta D.
Macchi, Piero
Medarde, Marisa
author_facet Gawryluk, Dariusz J.
Klein, Y. Maximilian
Scatena, Rebecca
Shang, Tian
Sibille, Romain
Sheptyakov, Denis
Casati, Nicola
Linden, Anthony
Chernyshov, Dmitry
Kozłowski, Mirosław
Dłużewski, Piotr
Rossell, Marta D.
Macchi, Piero
Medarde, Marisa
contents The recent discovery of superconductivity in infinite layer thin films and bulk Ruddlesden-Popper nickelates has stimulated the investigation of other predicted properties of these materials. Among them, the existence of magnetism-driven ferroelectricity in the parent compounds RNiO3 (R = 4f lanthanide and Y) at the onset of the Néel order, TN, has remained particularly elusive. Using diffraction techniques, we reveal here the existence of magnetostriction at TN in bulk YNiO3 single crystals. Interestingly, the associated lattice anomalies are much more pronounced along the b crystal axis, which coincides with the electric polarization direction expected from symmetry arguments. This axis undergoes an abrupt contraction below TN that reaches deltab/b ~ - 0.01 %, a value comparable to those found in some magnetoresistive manganites and much larger than those reported for magnetism-driven multiferroics. This observation suggests a strong spin-lattice coupling in these materials, consistent with theoretical predictions. Using the symmetry-adapted distortion mode formalism we identify the main ionic displacements contributing to the lattice anomalies and discuss the most likely polar displacements below TN. Furthermore, our data support symmetric superexchange as the most likely mechanism responsible for the magnetoelastic coupling. These results, that may be common to the full RNiO3 family, provide new experimental evidence supporting the predicted existence of magnetism-driven ferroelectricity in RNiO3 perovskites
format Preprint
id arxiv_https___arxiv_org_abs_2408_08077
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Magnetostructural Coupling at the Néel point in YNiO3 Single Crystals
Gawryluk, Dariusz J.
Klein, Y. Maximilian
Scatena, Rebecca
Shang, Tian
Sibille, Romain
Sheptyakov, Denis
Casati, Nicola
Linden, Anthony
Chernyshov, Dmitry
Kozłowski, Mirosław
Dłużewski, Piotr
Rossell, Marta D.
Macchi, Piero
Medarde, Marisa
Strongly Correlated Electrons
The recent discovery of superconductivity in infinite layer thin films and bulk Ruddlesden-Popper nickelates has stimulated the investigation of other predicted properties of these materials. Among them, the existence of magnetism-driven ferroelectricity in the parent compounds RNiO3 (R = 4f lanthanide and Y) at the onset of the Néel order, TN, has remained particularly elusive. Using diffraction techniques, we reveal here the existence of magnetostriction at TN in bulk YNiO3 single crystals. Interestingly, the associated lattice anomalies are much more pronounced along the b crystal axis, which coincides with the electric polarization direction expected from symmetry arguments. This axis undergoes an abrupt contraction below TN that reaches deltab/b ~ - 0.01 %, a value comparable to those found in some magnetoresistive manganites and much larger than those reported for magnetism-driven multiferroics. This observation suggests a strong spin-lattice coupling in these materials, consistent with theoretical predictions. Using the symmetry-adapted distortion mode formalism we identify the main ionic displacements contributing to the lattice anomalies and discuss the most likely polar displacements below TN. Furthermore, our data support symmetric superexchange as the most likely mechanism responsible for the magnetoelastic coupling. These results, that may be common to the full RNiO3 family, provide new experimental evidence supporting the predicted existence of magnetism-driven ferroelectricity in RNiO3 perovskites
title Magnetostructural Coupling at the Néel point in YNiO3 Single Crystals
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2408.08077