Compensation-Like Temperature and Spin-Flip Switch in Strained Thulium Iron Garnet Thin Films: Tuning Sublattice Interactions for Ferrimagnetic Spintronics

Fuente: arXiv
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Auteurs principaux: Soares, Carlos C., Mori, Thiago J. A., Béron, Fanny, Moodera, Jagadeesh S., Cezar, Júlio C., Brandão, Jeovani, Vilela, Gilvânia
Format: Preprint
Publié: 2025
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author Soares, Carlos C.
Mori, Thiago J. A.
Béron, Fanny
Moodera, Jagadeesh S.
Cezar, Júlio C.
Brandão, Jeovani
Vilela, Gilvânia
author_facet Soares, Carlos C.
Mori, Thiago J. A.
Béron, Fanny
Moodera, Jagadeesh S.
Cezar, Júlio C.
Brandão, Jeovani
Vilela, Gilvânia
contents Certain rare-earth iron garnet (RIG) thin films combine desirable properties such as low magnetic damping, high magnetostriction, and, in some cases, perpendicular magnetic anisotropy (PMA), making them attractive for spintronics applications. However, the interplay between their magnetic sublattices in confined films remains poorly explored, particularly the coupling between 3d and 4f electrons. Here, we investigate the magnetic properties of a 30 nm-thick thulium iron garnet (TmIG) thin film, where tensile strain promotes PMA. SQUID magnetometry and X-ray Magnetic Circular Dichroism measurements reveal a magnetization minimum near 50 K under moderate magnetic fields, leading to a compensation-like temperature (Tcomp-like), a feature absent in bulk TmIG. The presence of Tcomp-like is particularly relevant for controlling magnetization dynamics through compensation phenomena. Additionally, we observe a field-induced spin-flip transition in the Tm sublattice, where Tm moments reorient and align ferromagnetically concerning the Fe sublattices. This mechanism can be exploited for energy-efficient magnetization reversal. These findings provide new insights into strain-driven magnetic phenomena in rare-earth iron garnet thin films, highlighting the interplay between exchange interactions and anisotropy in confined geometries, which is crucial for the development of spintronic and magnonic devices.
format Preprint
id arxiv_https___arxiv_org_abs_2504_13369
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Compensation-Like Temperature and Spin-Flip Switch in Strained Thulium Iron Garnet Thin Films: Tuning Sublattice Interactions for Ferrimagnetic Spintronics
Soares, Carlos C.
Mori, Thiago J. A.
Béron, Fanny
Moodera, Jagadeesh S.
Cezar, Júlio C.
Brandão, Jeovani
Vilela, Gilvânia
Materials Science
78A30 (Magnetostatics), 82D40 (Magnetic materials)
Certain rare-earth iron garnet (RIG) thin films combine desirable properties such as low magnetic damping, high magnetostriction, and, in some cases, perpendicular magnetic anisotropy (PMA), making them attractive for spintronics applications. However, the interplay between their magnetic sublattices in confined films remains poorly explored, particularly the coupling between 3d and 4f electrons. Here, we investigate the magnetic properties of a 30 nm-thick thulium iron garnet (TmIG) thin film, where tensile strain promotes PMA. SQUID magnetometry and X-ray Magnetic Circular Dichroism measurements reveal a magnetization minimum near 50 K under moderate magnetic fields, leading to a compensation-like temperature (Tcomp-like), a feature absent in bulk TmIG. The presence of Tcomp-like is particularly relevant for controlling magnetization dynamics through compensation phenomena. Additionally, we observe a field-induced spin-flip transition in the Tm sublattice, where Tm moments reorient and align ferromagnetically concerning the Fe sublattices. This mechanism can be exploited for energy-efficient magnetization reversal. These findings provide new insights into strain-driven magnetic phenomena in rare-earth iron garnet thin films, highlighting the interplay between exchange interactions and anisotropy in confined geometries, which is crucial for the development of spintronic and magnonic devices.
title Compensation-Like Temperature and Spin-Flip Switch in Strained Thulium Iron Garnet Thin Films: Tuning Sublattice Interactions for Ferrimagnetic Spintronics
topic Materials Science
78A30 (Magnetostatics), 82D40 (Magnetic materials)
url https://arxiv.org/abs/2504.13369