том 9 издание 2 номер публикации 024409

Spin-lattice couplings in 3d ferromagnets: Analysis from first principles

I. P. Miranda 1, 2
Maryna Pankratova 1, 3, 4
Markus Weißenhofer 1, 5
A.B. Klautau 6
D. Thonig 1, 7
MANUEL PEREIRO 1
Erik Sjöqvist 1
A. Delin 4, 8, 9
M. I. KATSNELSON 4, 10
Olle Eriksson 1, 4
A. Bergman 1
Тип публикацииJournal Article
Дата публикации2025-02-24
scimago Q1
wos Q2
БС1
SJR0.945
CiteScore5.9
Impact factor3.4
ISSN24759953
Краткое описание

Magnetoelasticity plays a crucial role in numerous magnetic phenomena, including magnetocalorics, magnon excitation via acoustic waves, and ultrafast demagnetization, or the Einstein–de Haas effect. Despite a long-standing discussion on anisotropy-mediated magnetoelastic interactions of relativistic origin, the exchange-mediated magnetoelastic parameters within an atomistic framework have only recently begun to be investigated. As a result, many of their behaviors and values for real materials remain poorly understood. Therefore, by using a proposed simple modification of the embedded cluster approach that reduces the computational complexity, we critically analyze the properties of exchange-mediated spin-lattice coupling parameters for elemental 3d ferromagnets (bcc Fe, fcc Ni, and fcc Co), comparing methods used for their extraction and relating their realistic values to symmetry considerations and orbitally decomposed contributions. Additionally, we investigate the effects of noncollinearity (spin temperature) and applied pressure on these parameters. For Fe, we find that single-site rotations, associated with spin temperatures around 100 K, induce significant modifications, particularly in Dzyaloshinskii-Moriya-type couplings; in contrast, such interactions in Co and Ni remain almost configuration independent. Moreover, we demonstrate a notable change in the exchange-mediated magnetoelastic constants for Fe under isotropic contraction. Finally, the conversion between atomistic, quantum-mechanically derived parameters and the phenomenological magnetoelastic theory is discussed, which can be a useful tool towards larger and more realistic dynamics simulations involving coupled subsystems.

Published by the American Physical Society 2025
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Miranda I. P. et al. Spin-lattice couplings in 3d ferromagnets: Analysis from first principles // Physical Review Materials. 2025. Vol. 9. No. 2. 024409
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Miranda I. P., Pankratova M., Weißenhofer M., Klautau A., Thonig D., PEREIRO M., Sjöqvist E., Delin A., KATSNELSON M. I., Eriksson O., Bergman A. Spin-lattice couplings in 3d ferromagnets: Analysis from first principles // Physical Review Materials. 2025. Vol. 9. No. 2. 024409
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TY - JOUR
DO - 10.1103/physrevmaterials.9.024409
UR - https://link.aps.org/doi/10.1103/PhysRevMaterials.9.024409
TI - Spin-lattice couplings in 3d ferromagnets: Analysis from first principles
T2 - Physical Review Materials
AU - Miranda, I. P.
AU - Pankratova, Maryna
AU - Weißenhofer, Markus
AU - Klautau, A.B.
AU - Thonig, D.
AU - PEREIRO, MANUEL
AU - Sjöqvist, Erik
AU - Delin, A.
AU - KATSNELSON, M. I.
AU - Eriksson, Olle
AU - Bergman, A.
PY - 2025
DA - 2025/02/24
PB - American Physical Society (APS)
IS - 2
VL - 9
SN - 2475-9953
ER -
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@article{2025_Miranda,
author = {I. P. Miranda and Maryna Pankratova and Markus Weißenhofer and A.B. Klautau and D. Thonig and MANUEL PEREIRO and Erik Sjöqvist and A. Delin and M. I. KATSNELSON and Olle Eriksson and A. Bergman},
title = {Spin-lattice couplings in 3d ferromagnets: Analysis from first principles},
journal = {Physical Review Materials},
year = {2025},
volume = {9},
publisher = {American Physical Society (APS)},
month = {feb},
url = {https://link.aps.org/doi/10.1103/PhysRevMaterials.9.024409},
number = {2},
pages = {024409},
doi = {10.1103/physrevmaterials.9.024409}
}