Spin-orbital order and excitons in magnetoresistive HoBi
arXiv:2301.05141 · doi:10.1103/PhysRevB.107.104423
Abstract
The magnetism of the rock-salt rare-earth monopnictide HoBi, a candidate topological material with extreme magnetoresistance, is investigated. From the Ho non-Kramers =8 spin-orbital multiplet, the cubic crystal electric field yields six nearly degenerate low-energy levels. These constitute an anisotropic magnetic moment with a Jahn-Teller-like coupling to the lattice. In the cubic phase for , the paramagnetic neutron scattering is centered at and was fit to dominant antiferromagnetic interactions between Ho spins separated by and ferromagnetic interactions between spins displaced by . For , a type-II AFM long-range order with develops along with a tetragonal lattice distortion. While neutron diffraction from a multi-domain sample cannot unambiguously determine the spin orientation within a domain, the bulk magnetization, structural distortion, and our measurements of the magnetic excitations all show the easy axis coincides with the tetragonal axis. The weakly dispersive excitons for can be accounted for by a spin Hamiltonian that includes the crystal electric field and exchange interactions within the Random Phase Approximation.
10 pages, 6 figures
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