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Catalog of Unconventional Magnons in Collinear Magnets

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arxiv 2307.12366 v3 pith:5UMRF3OU submitted 2023-07-23 cond-mat.mtrl-sci cond-mat.mes-hall

classification cond-mat.mtrl-scicond-mat.mes-hall
keywords collinearmagnonsbandmagnetsmagnonunconventionalmagneticspin
verification ladder T0 review T1 audit T2 compute T3 formal
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Topological magnons have garnered significant interest for their potential in both fundamental research and device applications, owing to their exotic, uncharged, yet topologically protected boundary modes. However, their comprehension has been hindered by the absence of fundamental symmetry descriptions of magnetic materials, which are primarily governed by isotropic Heisenberg interactions in spin Hamiltonians. The ensuing magnon dispersions enable gapless magnon band nodes that go beyond the scenario of representation theory of the magnetic space groups (MSGs), thus referred to as unconventional magnons. Here we developed spin space group (SSG) theory to elucidate collinear magnetic configurations, classifying the 1421 collinear SSGs into four types, constructing their band representations, and providing a comprehensive tabulation of unconventional magnons, such as duodecuple points, octuple nodal lines, and charge-4 octuple points. Based on the MAGNDATA database, we identified 498 collinear magnets with unconventional magnons, among which over 200 magnon band structures were obtained by using first-principles calculations and linear spin wave theory. Additionally, we evaluated the influence of the spin-orbit coupling-induced exchange interaction in these magnets and found that more than 80% are predominantly governed by the Heisenberg interactions, indicating that SSG serves as an ideal framework for describing magnon band nodes in most 3d, 4d and half-filled 4f collinear magnets. Our work offers new pathways for exploring uncharged transports in magnonic systems, holding promise for advancements in next-generation spintronic devices.

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  1. Magnetic Field Control of the N\'eel Vector and Magnon Visibility in Altermagnetic MnTe

    cond-mat.str-el 2026-07 accept novelty 6.0 of 10

    In-plane fields reorient the Néel vector in α-MnTe, leaving chiral magnon energies and linewidths unchanged while modifying spectral intensity via the transverse-momentum projector.

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