Weyl Magnons in the Non-Coplanar Antiferromagnet MnTe$_2$

Fuente: arXiv
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Autori principali: Fahmy, Ahmed E., Williams, Archibald J., Li, Yufei, Mai, Thuc T., Garrity, Kevin F., Stone, Matthew B., Karaki, Mohammed J., Haravifard, Sara, Walker, Angela R. Hight, Aguilar, Rolando Valdés, Goldberger, Joshua E., Lu, Yuan-Ming
Natura: Preprint
Pubblicazione: 2025
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author Fahmy, Ahmed E.
Williams, Archibald J.
Li, Yufei
Mai, Thuc T.
Garrity, Kevin F.
Stone, Matthew B.
Karaki, Mohammed J.
Haravifard, Sara
Walker, Angela R. Hight
Aguilar, Rolando Valdés
Goldberger, Joshua E.
Lu, Yuan-Ming
author_facet Fahmy, Ahmed E.
Williams, Archibald J.
Li, Yufei
Mai, Thuc T.
Garrity, Kevin F.
Stone, Matthew B.
Karaki, Mohammed J.
Haravifard, Sara
Walker, Angela R. Hight
Aguilar, Rolando Valdés
Goldberger, Joshua E.
Lu, Yuan-Ming
contents Using a combination of band representation analysis, inelastic neutron scattering (INS), magneto-Raman spectroscopy measurements, and linear spin wave theory, we establish that the non-coplanar antiferromagnet MnTe$_2$ is a tunable Weyl magnon material, hosting symmetry-protected topological nodal lines in its magnon band structure, protected by the the non-coplanar nature of the antiferromagnetic ordering, that transition into Weyl magnons upon the application of symmetry-breaking perturbations using an external magnetic field. By constructing a spin model that reproduces the observed INS magnon spectra and field-dependence of the Raman $Γ$-magnons, we directly probe the topological magnon nodal lines and observe their associated signature of non-trivial topology through the pseudo-spin winding of the scattering intensity in angular scans near the nodal lines. Finally, we discuss how to induce Weyl magnons in the spectrum through an external magnetic field, shedding light on future in-field INS and thermal Hall experiments. This work establishes a clear magnonic analog to Weyl electrons, enabling further exploration of topological behavior in bosonic systems and highlighting the interplay between magnetic order and band topology in non-coplanar antiferromagnets.
format Preprint
id arxiv_https___arxiv_org_abs_2512_18534
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Weyl Magnons in the Non-Coplanar Antiferromagnet MnTe$_2$
Fahmy, Ahmed E.
Williams, Archibald J.
Li, Yufei
Mai, Thuc T.
Garrity, Kevin F.
Stone, Matthew B.
Karaki, Mohammed J.
Haravifard, Sara
Walker, Angela R. Hight
Aguilar, Rolando Valdés
Goldberger, Joshua E.
Lu, Yuan-Ming
Materials Science
Strongly Correlated Electrons
Using a combination of band representation analysis, inelastic neutron scattering (INS), magneto-Raman spectroscopy measurements, and linear spin wave theory, we establish that the non-coplanar antiferromagnet MnTe$_2$ is a tunable Weyl magnon material, hosting symmetry-protected topological nodal lines in its magnon band structure, protected by the the non-coplanar nature of the antiferromagnetic ordering, that transition into Weyl magnons upon the application of symmetry-breaking perturbations using an external magnetic field. By constructing a spin model that reproduces the observed INS magnon spectra and field-dependence of the Raman $Γ$-magnons, we directly probe the topological magnon nodal lines and observe their associated signature of non-trivial topology through the pseudo-spin winding of the scattering intensity in angular scans near the nodal lines. Finally, we discuss how to induce Weyl magnons in the spectrum through an external magnetic field, shedding light on future in-field INS and thermal Hall experiments. This work establishes a clear magnonic analog to Weyl electrons, enabling further exploration of topological behavior in bosonic systems and highlighting the interplay between magnetic order and band topology in non-coplanar antiferromagnets.
title Weyl Magnons in the Non-Coplanar Antiferromagnet MnTe$_2$
topic Materials Science
Strongly Correlated Electrons
url https://arxiv.org/abs/2512.18534