Nonrelativistic Piezomagnetic Effect in an Organic Altermagnet

Fuente: arXiv
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Main Authors: Naka, Makoto, Motome, Yukitoshi, Miyazaki, Tsuyoshi, Seo, Hitoshi
Format: Preprint
Published: 2025
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author Naka, Makoto
Motome, Yukitoshi
Miyazaki, Tsuyoshi
Seo, Hitoshi
author_facet Naka, Makoto
Motome, Yukitoshi
Miyazaki, Tsuyoshi
Seo, Hitoshi
contents We theoretically study the piezomagnetic effect on the altermagnetic state in $κ$-type molecular conductors, focusing on its nonrelativistic mechanism. By introducing shear stress as a monoclinic distortion, we evaluate variations in the effective tight-binding model using first-principles calculations. Using the derived parameters, we investigate the Hubbard model and its effective Heisenberg model on the two-dimensional (distorted) $κ$-type lattice within mean-field approximation. We show that the system exhibits the piezomagnetic effect, i.e., a net magnetization induced at finite temperatures in the undoped insulating state and both in the ground state and at finite temperatures upon doping. In a real-space picture, this uniform magnetization arises from the ferrimagnetic spin structure due to inequivalent spin sites induced by lattice distortion. Meanwhile, in a momentum-space picture, it stems from the {\it s}-wave spin splitting of the electron and magnon bands, independent of spin-orbit coupling. We find that this nonrelativistic piezomagnetism remains finite, but becomes smaller in the limit of strong dimerization where the energy gap between the bonding and antibonding orbitals is infinitely large and the {\it d}-wave altermagnetic spin splitting is absent, highlighting the importance of the multi-orbital nature.
format Preprint
id arxiv_https___arxiv_org_abs_2505_07327
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Nonrelativistic Piezomagnetic Effect in an Organic Altermagnet
Naka, Makoto
Motome, Yukitoshi
Miyazaki, Tsuyoshi
Seo, Hitoshi
Strongly Correlated Electrons
We theoretically study the piezomagnetic effect on the altermagnetic state in $κ$-type molecular conductors, focusing on its nonrelativistic mechanism. By introducing shear stress as a monoclinic distortion, we evaluate variations in the effective tight-binding model using first-principles calculations. Using the derived parameters, we investigate the Hubbard model and its effective Heisenberg model on the two-dimensional (distorted) $κ$-type lattice within mean-field approximation. We show that the system exhibits the piezomagnetic effect, i.e., a net magnetization induced at finite temperatures in the undoped insulating state and both in the ground state and at finite temperatures upon doping. In a real-space picture, this uniform magnetization arises from the ferrimagnetic spin structure due to inequivalent spin sites induced by lattice distortion. Meanwhile, in a momentum-space picture, it stems from the {\it s}-wave spin splitting of the electron and magnon bands, independent of spin-orbit coupling. We find that this nonrelativistic piezomagnetism remains finite, but becomes smaller in the limit of strong dimerization where the energy gap between the bonding and antibonding orbitals is infinitely large and the {\it d}-wave altermagnetic spin splitting is absent, highlighting the importance of the multi-orbital nature.
title Nonrelativistic Piezomagnetic Effect in an Organic Altermagnet
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2505.07327