Computational Study of the Magnetic Structure of NaIrO
arXiv:1504.02699 · doi:10.1103/PhysRevLett.115.167204
Abstract
The magnetic structure of honeycomb iridate NaIrO is of paramount importance to its exotic properties. The magnetic order is established experimentally to be zigzag antiferromagnetic. However, the previous assignment of ordered moment to the -axis is tentative. We examine the magnetic structure of NaIrO using first-principles methods. Our calculations reveal that total energy is minimized when the zigzag antiferromagnetic order is magnetized along . Such a magnetic configuration is explained by adding anisotropic interactions to the nearest-neighbor Kitaev-Heisenberg model. Spin-wave spectrum is also calculated, where the calculated spin gap of meV can in principle be measured by future inelastic neutron scattering experiments. Finally we emphasize that our proposal is consistent with all known experimental evidence, including the most relevant resonant x-ray magnetic scattering measurements [X. Liu \emph{et al.} {Phys. Rev. B} \textbf{83}, 220403(R) (2011)].
18 pages, 7 figures
References in corpus (7)
- Mott Insulators in the Strong Spin-Orbit Coupling Limit: From Heisenberg to a Quantum Compass and Kitaev Models
- Novel Jeff = 1/2 Mott State Induced by Relativistic Spin-Orbit Coupling in Sr2IrO4
- On the Origin of Zigzag Magnetic Order in Iridium Oxide Na2IrO3
- Long range magnetic ordering in NaIrO
- Na2IrO3 as a spin-orbit-assisted antiferromagnetic insulator with a 340 meV gap
- Hidden symmetries of the extended Kitaev-Heisenberg model: Implications for honeycomb lattice iridates A2IrO3
- Importance of anisotropic exchange interactions in honeycomb iridates. Minimal model for zigzag antiferromagnetic order in NaIrO
Cited by in corpus (17)
- Ferrimagnetism and anisotropic phase tunability by magnetic fields in NaCoTeO
- Spin-orbit phase behaviors of Na2Co2TeO6 at low temperatures
- Unveiling Magnetic Interactions of Ruthenium Trichloride via Constraining Direction of Orbital moments: Potential Routes to Realize Quantum Spin Liquid
- Competition between static and dynamic magnetism in the Kitaev spin liquid material Cu2IrO3
- Robust spin correlations at high magnetic fields in the honeycomb iridates
- Magnetic anisotropy of the alkali iridate NaIrO at high magnetic fields: evidence for strong ferromagnetic Kitaev correlations
- - Approaches for Low-Energy Spin Hamiltonians
- Bond ordering and phase transitions in NaIrO under high pressure
- Spin orientations of the spin-half Ir4+ ions in Sr3NiIrO6, Sr2IrO4 and Na2IrO3: Density functional, perturbation theory and Madelung potential analyses
- Topological superconductivity in the extended Kitaev-Heisenberg model
- First-principles Study on the Magnetic Interactions in Honeycomb Na2IrO3
- Possible Quantum Paraelectric State in Kitaev Spin Liquid Candidate HLiIrO
- Model Hamiltonian for strongly-correlated systems: Systematic, self-consistent, and unique construction
- Kitaev quasiparticles in a proximate spin liquid: A many-body localization perspective
- Multiband model and self-doping in the electronic structure of BaIrO
- Computational exploration of a viable route to Kitaev-quantum spin liquid phase in OsCl
- Enhanced Magnetism and Phase Transitions in Ultrathin Quantum Spin Liquid Na2IrO3 Flakes