Multi-orbital physics in inverse Lieb lattice altermagnets
arXiv:2608.27200
Abstract
The inverse Lieb lattice has recently emerged as a promising platform for altermagnetism, with several materials with this structure proposed as -wave altermagnetic candidates. Here, we develop a symmetry-based microscopic Hamiltonian for these materials that includes both sublattice and orbital degrees of freedom, going beyond the sublattice-only minimal models that have been extensively used to study such altermagnets. We apply these models to examine multi-orbital electron correlation physics in the vanadium oxychalcogenide family altermagnets, which contain dominant and orbitals character at the Fermi level in the altermagnetic state. We demonstrate that orbitals are crucial to stabilize the altermagnetic state observed within a single VO layer, and altermagnetic order in the orbitals is induced through Hund's coupling. Additionally, we show that these multi-orbital models reveal topological regimes in which topological edge states are naturally orbital selective.
8 pages, 5 figures