Superexchange theory of electronic polarization driven by relativistic spin-orbit interaction at the half-filling
arXiv:1703.03556 · doi:10.1103/PhysRevB.95.214406
Abstract
By applying Berry-phase theory for the effective half-filled Hubbard model, we derive an analytical expression for the electronic polarization driven by the relativistic spin-orbit (SO) coupling. The model itself is constructed in the Wannier basis, using the input from the first-principles electronic structure calculations in the local-density approximation, and then treated in the spirit of the superexchange theory. The obtained polarization has the following form: , where is the direction of the bond , and are the directions of spins in this bond, and is the pseudovector containing all the information about the crystallographic symmetry of the considered system. The expression describes the ferroelectric activity in various magnets with noncollinear but otherwise nonpolar magnetic structures, which would yield no polarization without SO interaction, including the magnetoelectric (ME) effect, caused by the ferromagnetic canting of spins in the external magnetic field, and spin-spiral multiferroics. The abilities of this theory are demonstrated for the the analysis of linear ME effect in CrO and BiFeO and properties multiferroic MnWO and -MnO. In all considered examples, the theory perfectly describes the symmetry properties of the induced polarization. However, in some cases, the values of this polarization are underestimated, suggesting that other effects, besides the spin and electronic ones, can also play an important role.
31 pages, 10 figures
References in corpus (20)
- Spin-orbit interactions of light
- Spin current and magneto-electric effect in non-collinear magnets
- New Perspectives for Rashba Spin-Orbit Coupling
- Weak ferromagnetism and magnetoelectric coupling in bismuth ferrite
- Role of the Dzyaloshinskii-Moriya interaction in multiferroic perovskites
- Ferroelectric polarization flop in a frustrated magnet MnWO induced by magnetic fields
- Dual nature of improper ferroelectricity in a magnetoelectric multiferroic
- A New Multiferroic Material: MnWO4
- Combining DFT and Many-Body Methods to Understand Correlated Materials
- Magnetic dispersion and anisotropy in multiferroic BiFeO3
- Full magnetoelectric response of Cr2O3 from first principles
- Long-Range Magnetic Interactions in the Multiferroic Antiferromagnet
- Origin of the giant linear magnetoelectric effect in perovskite-like multiferroic BiFeO
- Ferroelectricity due to orbital ordering in E-type undoped rare-earth manganites
- Origin of Multiferroicity in MnWO4
- Spin-spiral inhomogeneity as the origin of ferroelectricity in orthorhombic manganites
- Self-consistent linear response for the spin-orbit interaction related properties
- Spin dependence of ferroelectric polarization in the double exchange model for manganites
- Magnetization induced local electric dipoles and multiferroic properties of Ba2CoGe2O7
- Spin-Wave and Electromagnon Dispersions in Multiferroic MnWO4 as Observed by Neutron Spectroscopy: Isotropic Heisenberg Exchange versus Anisotropic Dzyaloshinskii-Moriya Interaction
Cited by in corpus (6)
- Microscopic theory of electric polarization induced by skyrmionic order in GaVS
- Magnetically induced polarization in centrosymmetric bonds
- Skyrmionic order and magnetically induced polarization change in lacunar spinel compounds GaVS and GaMoS: comparative theoretical study
- Ferromagnetic ferroelectricity due to the Kugel-Khomskii mechanism of the orbital ordering assisted by atomic Hund's second rule effects
- Fingerprints of spin-current physics on magnetoelectric response in the spin- magnet BaCuGeO
- Basic aspects of ferroelectricity induced by noncollinear alignment of spins