Highly frustrated magnetism in relativistic Mott insulators: Bosonic analog of Kitaev honeycomb model
arXiv:1910.00074 · doi:10.1103/PhysRevB.100.224413
Abstract
We study the orbitally frustrated singlet-triplet models that emerge in the context of spin-orbit coupled Mott insulators with electronic configuration. In these compounds, low-energy magnetic degrees of freedom can be cast in terms of three-flavor "triplon" operators describing the transitions between spin-orbit entangled ionic ground state and excited levels. In contrast to a conventional, flavor-isotropic O(3) singlet-triplet models, spin-orbit entangled triplon interactions are flavor-and-bond selective and thus highly frustrated. In a honeycomb lattice, we find close analogies with the Kitaev spin model -- an infinite number of conserved quantities, no magnetic condensation, and spin correlations being strictly short-ranged. However, due to the bosonic nature of triplons, there are no emergent gapless excitations within the spin gap, and ground state is a strongly correlated paramagnet of dense triplon pairs with no long-range entanglement. Using exact diagonalization, we study the bosonic Kitaev model and its various extensions, which break exact symmetries of the model and allow magnetic condensation of triplons. Possible implications for magnetism of ruthenium oxides are discussed.
15 pages, 6 figures
References in corpus (9)
- Mott Insulators in the Strong Spin-Orbit Coupling Limit: From Heisenberg to a Quantum Compass and Kitaev Models
- Bose-Einstein Condensation in Magnetic Insulators
- On the Origin of Zigzag Magnetic Order in Iridium Oxide Na2IrO3
- Pseudospin exchange interactions in d^7 cobalt compounds: Possible realization of the Kitaev model
- The quadrupolar phases of the S=1 bilinear-biquadratic Heisenberg model on the triangular lattice
- Kitaev-Heisenberg Hamiltonian for High-Spin Mott Insulators
- A Spin-Orbital Singlet and Quantum Critical Point on the Diamond Lattice: FeSc2S4
- Unconventional magnetism in the 4d based () honeycomb system AgLiRuO
- Low temperature properties in the Bilayer Kitaev model