dorsal/arxiv
View SchemaHigher order magnetoelasticity energy corrections in bcc and fcc systems
| Authors | Jakub Šebesta, Ondřej Faiman, Dominik Legut |
|---|---|
| Categories | |
| ArXiv ID | 2601.06691vv1 |
| URL | https://arxiv.org/abs/2601.06691 |
| License | http://arxiv.org/licenses/nonexclusive-distrib/1.0/ |
Abstract
Magnetoelastic properties play a vital role in industrial applications. Despite being hidden behind either purely magnetic or elastic behavior, magnetoelasticity takes place in a wide range of devices as transducers, acoustic actuators, or fast response sensors. In this work, we inspect the impact of higher-order terms on the anisotropic magnetostriction behavior. Regarding ab-initio calculations, the anisotropic magnetostriction can be related to the strain dependence of the magnetocrystaline energy. Commonly, the description is restricted to a linear strain dependence in the magnetoelastic energy. Here, we derive higher-order terms in strain for bcc and fcc crystal structures. Using a simple parametrization, we show that the influence of the higher-order strain terms is negligible for the studied cubic systems.
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"abstract": "Magnetoelastic properties play a vital role in industrial applications. Despite being hidden behind either purely magnetic or elastic behavior, magnetoelasticity takes place in a wide range of devices as transducers, acoustic actuators, or fast response sensors. In this work, we inspect the impact of higher-order terms on the anisotropic magnetostriction behavior. Regarding ab-initio calculations, the anisotropic magnetostriction can be related to the strain dependence of the magnetocrystaline energy. Commonly, the description is restricted to a linear strain dependence in the magnetoelastic energy. Here, we derive higher-order terms in strain for bcc and fcc crystal structures. Using a simple parametrization, we show that the influence of the higher-order strain terms is negligible for the studied cubic systems.",
"arxiv_id": "2601.06691",
"authors": [
"Jakub \u0160ebesta",
"Ond\u0159ej Faiman",
"Dominik Legut"
],
"categories": [
"cond-mat.mtrl-sci"
],
"license": "http://arxiv.org/licenses/nonexclusive-distrib/1.0/",
"title": "Higher order magnetoelasticity energy corrections in bcc and fcc systems",
"url": "https://arxiv.org/abs/2601.06691",
"version": "v1"
},
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