Spin-orbit-entangled electronic phases in 4 and 5 transition-metal compounds
arXiv:2102.02740 · doi:10.7566/JPSJ.90.062001
Abstract
Complex oxides with and transition-metal ions recently emerged as a new paradigm in correlated electron physics, due to the interplay between spin-orbit coupling and electron interactions. For and ions, the spin-orbit coupling, , can be as large as 0.2-0.4 eV, which is comparable with and often exceeds other relevant parameters such as Hund's coupling , noncubic crystal field splitting , and the electron hopping amplitude . This gives rise to a variety of spin-orbit-entangled degrees of freedom and, crucially, non-trivial interactions between them that depend on the -electron configuration, the chemical bonding, and the lattice geometry. Exotic electronic phases often emerge, including spin-orbit assisted Mott insulators, quantum spin liquids, excitonic magnetism, multipolar orderings and correlated topological semimetals. This paper provides a selective overview of some of the most interesting spin-orbit-entangled phases that arise in and transition-metal compounds.
31 pages, 28 figures. Submitted to J. Phys. Soc. Jpn