Exchange constants and spin waves of the orbital ordered, non-collinear spinel MnVO
arXiv:1201.6375 · doi:10.1103/PhysRevB.86.085138
Abstract
We study the exchange constants of MnVO using magnetic force theorem and local spin density approximation of density functional theory supplemented with a correction due to on-site Hubbard interaction U. We obtain the exchanges for three different orbital orderings of the Vanadium atoms of the spinel. We then map the exchange constants to a Heisenberg model with single-ion anisotropy and solve for the spin-wave excitations in the non-collinear, low temperature phase of the spinel. The single-ion anisotropy parameters are obtained from an atomic multiplet exact-diagonalization program, taking into effect the crystal-field splitting and the spin-orbit coupling. We find good agreement between the spin waves of one of our orbital ordered setups with previously reported experimental spin waves as determined by neutron scattering. We can therefore determine the correct orbital order from various proposals that exist in the literature.
9 pages, 6 figures
References in corpus (8)
- Screened Coulomb interaction in the maximally localized Wannier basis
- Magnetic and orbital ordering in the spinel MnV2O4
- Structural, orbital, and magnetic order in vanadium spinels
- Magnetic transition and orbital degrees of freedom in vanadium spinels
- Orbital order in ZnVO
- Calculations of Magnetic Exchange Interactions in Mott--Hubbard Systems
- Quantum 120-degree model on pyrochlore lattice: orbital ordering in MnV2O4
- Two inequivalent sublattices and orbital ordering in MnV2O4 studied by 51V NMR
Cited by in corpus (5)
- Calculated Exchange Interactions and Sensitivity of Ni Two-Hole Spin State to Hund's Coupling in Doped NdNiO2
- Strong competition between orbital-ordering and itinerancy in a frustrated spinel vanadate
- Magnon spectra and strong spin-lattice coupling in magnetically frustrated MnB2O4 (B = Mn,V): Inelastic light scattering studies
- Magnetic excitations and anomalous spin wave broadening in multiferroic FeV2O4
- A complete description of the magnetic ground state in spinel vanadates