Electronic structure and bonding properties of cobalt oxide in the spinel structure
arXiv:1104.4383 · doi:10.1103/PhysRevB.83.245204
Abstract
The spinel cobalt oxide Co3O4 is a magnetic semiconductor containing cobalt ions in Co2+ and Co3+ oxidation states. We have studied the electronic, magnetic and bonding properties of Co3O4 using density functional theory (DFT) at the Generalized Gradient Approximation (GGA), GGA+U, and PBE0 hybrid functional levels. The GGA correctly predicts Co3O4 to be a semiconductor, but severely underestimates the band gap. The GGA+U band gap (1.96 eV) agrees well with the available experimental value (~ 1.6 eV), whereas the band gap obtained using the PBE0 hybrid functional (3.42 eV) is strongly overestimated. All the employed exchange-correlation functionals predict 3 unpaired d electrons on the Co2+ ions, in agreement with crystal field theory, but the values of the magnetic moments given by GGA+U and PBE0 are in closer agreement with the experiment than the GGA value, indicating a better description of the cobalt localized d states. Bonding properties are studied by means of Maximally Localized Wannier Functions (MLWFs). We find d-type MLWFs on the cobalt ions, as well as Wannier functions with the character of sp3d bonds between cobalt and oxygen ions. Such hybridized bonding states indicate the presence of a small covalent component in the primarily ionic bonding mechanism of this compound.
24 pages, 8 figures
References in corpus (4)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Order by disorder and spiral spin liquid in frustrated diamond lattice antiferromagnets
- Order-N implementation of exact exchange in extended systems
- Hybrid density functional calculations of the band gap of GaInN
Cited by in corpus (14)
- Electronic states and magnetic structure at the Co3O4 (110) surface: a first principles study
- Magnetic order in single crystals of Na3Co2SbO6 with a honeycomb arrangement of 3d Co ions
- Enabling Large-Scale Condensed-Phase Hybrid Density Functional Theory Based Molecular Dynamics I: Theory, Algorithm, and Performance
- Optical Absorption Induced by Small Polaron Formation in Transition Metal Oxides -- The Case of CoO
- Universality in the Electronic Structure of 3d Transition Metal Oxides
- Improved electronic structure and magnetic exchange interactions in transition metal oxides
- Role of intercalated Cobalt in the electronic structure of CoNbS
- Enabling Large-Scale Condensed-Phase Hybrid Density Functional Theory Based Molecular Dynamics II: Extensions to the Isobaric-Isoenthalpic and Isobaric-Isothermal Ensembles
- Tuning order-by-disorder multiferroicity in CuO by doping
- Electronic transport and magnetism in the alternating stack of metallic and highly frustrated magnetic layers in CoNbS
- Large Magnetocaloric effect and magnetic phase transitions in NdNiMnO
- Coexisting magnetic structures and spin-reorientation in ErDyFeO: Bulk magnetization, neutron scattering, specific heat, and \emph{Ab-initio} studies
- High-Throughput Condensed-Phase Hybrid Density Functional Theory for Large-Scale Finite-Gap Systems: The SeA Approach
- Cluster Spin Glass State in BaSbCoO: Cation Disorder and Mixed-Valence Co Dimers