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Exchange-Driven Chiral Magnons and Weyl States in Room-Temperature Metallic XCoB2 (X= Ta, Zr and Hf) Altermagnets

Arafat Rahman, Tareq Mahmud, Alamgir Kabir

cond-mat.mtrl-sciarXiv:2609.14094

Abstract

Metallic altermagnets remain rare, particularly in low-symmetry three-dimensional crystals where spin-split electronic bands and chiral magnon excitations can coexist. We report a family of metallic dyz-wave altermagnets in the orthorhombic ternary borides XCoB2 (X = Ta, Zr, Hf), which crystallize in the centrosymmetric Pnma structure with G-type collinear magnetic order. Symmetry analysis within the magnetic space group Pnm'a' (BNS No.~62.447) predicts a nonrelativistic spin splitting proportional to kykz, with symmetry-enforced degeneracy on the ky and kz nodal planes, consistent with first-principles calculations. On the kx=0 plane, the momentum-averaged spin splitting reaches 88.4, 52.3, and 70.6~meV at the Fermi level in TaCoB2, ZrCoB2, and HfCoB2, respectively, with maxima exceeding 200~meV in all three compounds. Exchange analysis shows that the altermagnetic magnon splitting originates from symmetry-inequivalent sixth-neighbour inter-sublattice interactions. The chirality splitting reaches 1.51, 2.03, and 3.10 meV below 50 meV in TaCoB2, ZrCoB2, and HfCoB2, respectively, making it accessible to inelastic neutron scattering. Monte Carlo simulations yield N'eel temperatures of 671.1, 3305.7, and 3075.0~K, placing ZrCoB2 and HfCoB*2 above room temperature. With spin-orbit coupling included, all three compounds host symmetry-protected Weyl points near the Fermi level, Fermi-arc surface states and sizable intrinsic anomalous Hall conductivities σ*zx of +342, -392, and -221~S/cm at the Fermi level, reaching maximum magnitudes of 763, 942, and 924~S/cm for TaCoB2, ZrCoB2, and HfCoB2, respectively. XCoB2 therefore provides a single compensated platform carrying both magnonic and electronic chirality, one in the spin waves and the other in the Berry curvature, without any stray field.

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