Theoretical evidence of spin-orbital-entangled =1/2 state in the 3 transition metal oxide CuAlO
arXiv:1810.08594 · doi:10.1103/PhysRevB.100.161104
Abstract
Transition metal oxides exhibit various competing phases and exotic phenomena depending on how their reaction to the rich degeneracy of the -orbital. Large spin-orbit coupling (SOC) reduces this degeneracy in a unique way by providing a spin-orbital-entangled ground state for 4 and 5 transition metal compounds. In particular, the spin-orbital-entangled Kramers doublet, known as the =1/2 pseudospin, appears in layered iridates and -RuCl, manifesting a relativistic Mott insulating phase. Such entanglement, however, seems barely attainable in 3 transition metal oxides, where the SOC is small and the orbital angular momentum is easily quenched. From experimental and theoretical evidence, here we report on the CuAlO spinel as the first example of a =1/2 Mott insulator in 3 transition metal compounds. Based on the experimental study, including synthesis of the cubic CuAlO single crystal, density functional theory and dynamical mean field theory calculations reveal that the =1/2 state survives the competition with an orbital-momentum-quenched =1/2 state. The electron-addition spectra probing unoccupied states are well described by the =1/2 hole state, whereas electron-removal spectra have a rich multiplet structure. The fully relativistic entity found in CuAlO provides new insight into the untapped regime where the spin-orbital-entangled Kramers pair coexists with strong electron correlation.
5pages, 4figures