Robust spin-orbit coupling in semi-metallic SrIrO3 under hydrostatic pressure

Fuente: arXiv
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Main Authors: Fuchs, Dirk, Jaiswal, Arun Kumar, Wilhelm, Fabrice, Wang, Di, Rogalev, Andre, Tacon, Matthieu Le
Format: Preprint
Published: 2025
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author Fuchs, Dirk
Jaiswal, Arun Kumar
Wilhelm, Fabrice
Wang, Di
Rogalev, Andre
Tacon, Matthieu Le
author_facet Fuchs, Dirk
Jaiswal, Arun Kumar
Wilhelm, Fabrice
Wang, Di
Rogalev, Andre
Tacon, Matthieu Le
contents The semi-metallic behavior of the perovskite iridate SrIrO3 shifts the end-member of the strongly spin-orbit (SO) coupled Ruddlesden-Popper series Srn+1IrnO3n+1 away from the Mott insulating regime and the half-filled pseudospin Jeff=1/2 ground state well-established in the layered iridates (n = 1 and 2). To investigate the robustness of the SO coupled ground state of SrIrO3, X-ray absorption spectroscopy was carried out at the Ir L2,3 edges under hydrostatic pressure up to 50 GPa at room temperature. The effective SO coupling was deduced from the branching ratio of the Ir L2 and L3 white lines. With increasing pressure, the branching ratio decreases, and the Ir L2,3 peak positions shift to higher energies. The number of 5d holes remains constant indicating that the spectral weight redistribution and peak shifts arise from orbital mixing between t2g and eg related states. The expectation value of the angular part of the SO operator <LS> decreases by about 15% at 50 GPa. This reduction, which is very similar to that observed in the layered iridates, is well explained by an increase of the octahedral crystal field due to the shortening of the Ir-O bond-length under compression. Consistent with theoretical predictions, the orbital mixing and <LS> decrease as the crystal field increases. However, the effective SO coupling remains robust against pressure and does not indicate a covalency-driven breakdown within the investigated pressure range.
format Preprint
id arxiv_https___arxiv_org_abs_2502_02985
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Robust spin-orbit coupling in semi-metallic SrIrO3 under hydrostatic pressure
Fuchs, Dirk
Jaiswal, Arun Kumar
Wilhelm, Fabrice
Wang, Di
Rogalev, Andre
Tacon, Matthieu Le
Strongly Correlated Electrons
Materials Science
The semi-metallic behavior of the perovskite iridate SrIrO3 shifts the end-member of the strongly spin-orbit (SO) coupled Ruddlesden-Popper series Srn+1IrnO3n+1 away from the Mott insulating regime and the half-filled pseudospin Jeff=1/2 ground state well-established in the layered iridates (n = 1 and 2). To investigate the robustness of the SO coupled ground state of SrIrO3, X-ray absorption spectroscopy was carried out at the Ir L2,3 edges under hydrostatic pressure up to 50 GPa at room temperature. The effective SO coupling was deduced from the branching ratio of the Ir L2 and L3 white lines. With increasing pressure, the branching ratio decreases, and the Ir L2,3 peak positions shift to higher energies. The number of 5d holes remains constant indicating that the spectral weight redistribution and peak shifts arise from orbital mixing between t2g and eg related states. The expectation value of the angular part of the SO operator <LS> decreases by about 15% at 50 GPa. This reduction, which is very similar to that observed in the layered iridates, is well explained by an increase of the octahedral crystal field due to the shortening of the Ir-O bond-length under compression. Consistent with theoretical predictions, the orbital mixing and <LS> decrease as the crystal field increases. However, the effective SO coupling remains robust against pressure and does not indicate a covalency-driven breakdown within the investigated pressure range.
title Robust spin-orbit coupling in semi-metallic SrIrO3 under hydrostatic pressure
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2502.02985