Systematic analysis of structural and magnetic properties of spinel (B=Cr,Mn and Fe)compounds from their electronic structures
arXiv:1606.03176 · doi:10.1088/0953-8984/28/44/446001
Abstract
The structural and magnetic properties of spinel compounds (B=Cr,Mn and Fe) are studied using the DFT+U method and generalized gradient approximation (GGA). We concentrate on understanding the trends in the properties of these materials as the B cation changes, in terms of relative strengths of crystal fields and exchange fields through an analysis of their electronic densities of states. We find that the electron-electron correlation plays a significant role in obtaining the correct structural and electronic ground states. Significant structural distortion in CoMnO and "inverted" sublattice occupancy in CoFeO affects the magnetic exchange interactions substantially. The trends in the magnetic exchange interactions are analysed in terms of the structural parameters and the features in their electronic structures. We find that the Fe states in CoFeO are extremely localised, irrespective of the symmetry of the site, which makes it very different from the features of the states of the B cations in other two compounds. These results provide useful insights into the trends in the properties of CoBO compounds with variation of B cation which would help in understanding the results of recent experiments on doping of Mn and Cr in multiferroic CoCrO.
10 pGES, 7 FIGURES, To appear in Journal of Physics Condensed Matter
References in corpus (4)
Cited by in corpus (4)
- First-principles investigations into the thermodynamics of cation disorder and it's impact on electronic structure and magnetic properties of spinel
- Jahn-Teller-driven Phase Segregation in MnCoO Spinel Thin Films
- Site occupancies and their effects on the physical properties of spinel : an {\it ab initio} study
- Exploring the Electronic Nature of Spinel Oxides: A Review of Their Electron Interactions and Prospects