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Availability of data and materials
The data that support the findings of this study are available from the corresponding author upon
reasonable request.
Financial support and sponsorship
This work was supported by the National Research Foundation of Korea (NRF) grant funded by the Korean
government (MSIT) (2022R1A2C1004440) and by the National Research Foundation of Korea
(2022M3H4A1A040853)
Conflicts of interest
All authors declared that there are no conflicts of interest
Ethical approval and consent to participate
Not applicable.
Consent for publication
Not applicable.
Copyright
© The Author(s) 2025.
REFERENCES
1. Mazin, I.; The PRX Editors. Editorial: altermagnetism-a new punch line of fundamental magnetism. Phys. Rev. X. 2022, 12, 04002. DOI
2. Manchon, A.; Koo, H. C.; Nitta, J.; Frolov, S. M.; Duine, R. A. New perspectives for Rashba spin-orbit coupling. Nat. Mater. 2015,
14, 871-82. DOI PubMed
3. Zhang, F.; Lv, L.; Xu, Z.; et al. Prediction of the TiS bilayer with self-intercalation: robust ferromagnetic semiconductor with a high
2
curie temperature. J. Phys. Chem. C. 2025, 129, 5577-88. DOI
4. Guo, S. D.; Tao, Y. L.; Wang, G.; Ang, Y. S. How to produce spin-splitting in antiferromagnetic materials. J. Phys. Condens. Matter.
2024, 36, 215804. DOI PubMed
5. Qi, Y.; Zhao, J.; Zeng, H. Spin-layer coupling in two-dimensional altermagnetic bilayers with tunable spin and valley splitting
properties. Phys. Rev. B. 2024, 110, 014442. DOI
6. Ma, H. Y.; Hu, M.; Li, N.; et al. Multifunctional antiferromagnetic materials with giant piezomagnetism and noncollinear spin current.
Nat. Commun. 2021, 12, 2846. DOI PubMed PMC
7. Guo, Y.; Liu, H.; Janson, O.; Fulga, I. C.; van, B. J.; Facio, J. I. Spin-split collinear antiferromagnets: a large-scale ab-initio study.
Materials. Today. Physics. 2023, 32, 100991. DOI
8. Šmejkal, L.; Sinova, J.; Jungwirth, T. Beyond conventional ferromagnetism and antiferromagnetism: a phase with nonrelativistic spin
and crystal rotation symmetry. Phys. Rev. X. 2022, 12, 031042. DOI
9. Šmejkal, L.; Sinova, J.; Jungwirth, T. Emerging research landscape of altermagnetism. Phys. Rev. X. 2022, 12, 040501. DOI
10. Naka, M.; Hayami, S.; Kusunose, H.; Yanagi, Y.; Motome, Y.; Seo, H. Spin current generation in organic antiferromagnets. Nat.
Commun. 2019, 10, 4305. DOI PubMed PMC
11. Zhu, Y.; Chen, T.; Li, Y.; et al. Multipiezo effect in altermagnetic V SeTeO monolayer. Nano. Lett. 2024, 24, 472-8. DOI
2
12. Bhowal, S.; Spaldin, N. A. Ferroically ordered magnetic octupoles in d-wave altermagnets. Phys. Rev. X. 2024, 14, 011019. DOI
13. Guo, S.; Guo, X.; Cheng, K.; Wang, K.; Ang, Y. S. Piezoelectric altermagnetism and spin-valley polarization in Janus monolayer Cr 2
SO. Appl. Phys. Lett. 2023, 123, 082401. DOI
14. Gao, Z. F.; Qu, S.; Zeng, B.; et al. AI-accelerated discovery of altermagnetic materials. arXiv 2023, arXiv:2311.04418. Available
online: http://arxiv.org/abs/2311.04418 (accessed 2025-05-14).
15. Mazin, I. I. Altermagnetism in MnTe: origin, predicted manifestations, and routes to detwinning. Phys. Rev. B. 2023, 107, L100418.
DOI
16. Mazin, I. I.; Koepernik, K.; Johannes, M. D.; González-Hernández, R.; Šmejkal, L. Prediction of unconventional magnetism in doped
FeSb . Proc. Natl. Acad. Sci. U. S. A. 2021, 118, e2108924118. DOI PubMed PMC
2
17. Sødequist, J.; Olsen, T. Two-dimensional altermagnets from high throughput computational screening: symmetry requirements, chiral
magnons, and spin-orbit effects. Appl. Phys. Lett. 2024, 124, 182409. DOI
18. Zeng, S.; Zhao, Y. Description of two-dimensional altermagnetism: categorization using spin group theory. Phys. Rev. B. 2024, 110, .
054406. DOI

