Metal-insulator transition in Sr2-xLaxCoO4 driven by spin-state transition
arXiv:1208.0637 · doi:10.1103/PhysRevB.86.075120
Abstract
We sought the origin of the metal-insulator transition in Sr2-xLaxCoO4, using electron-correlation corrected density functional calculations. Our results show that Sr2CoO4 is in an intermediate-spin (IS) state and a strong Co4+ 3d-O 2p hybridization is responsible for its ferromagnetic metallicity. Upon La doping, however, a spin-state transition occurs in Sr1.5La0.5CoO4: IS-Co4+ x 2 + 1e --> LS-Co4+ + HS-Co3+ (LS: low spin; HS: high spin). Then the spin-state transition suppresses an electron hopping via a spin-blockade and gives rise to the insulating behavior of Sr1.5La0.5CoO4. A corresponding superexchange accounts for its ferromagnetism. Thus, spin state could provide a way to tune materials properties.
5 pages, 4 figures, 1 table. PRB in press
References in corpus (9)
- Spin blockade, orbital occupation and charge ordering in La_(1.5)Sr_(0.5)CoO4
- The 5D term origin of the excited triplet in LaCoO3
- CaCrO3: an anomalous antiferromagnetic metallic oxide
- Magnetic correlations in La2-xSrxCoO4 studied by neutron scattering : possible evidence for stripe phases
- Magnetic order and dynamics of the charge-ordered antiferromagnet La1.5Sr0.5CoO4
- Anisotropic Susceptibility of La_2-xSr_xCoO_4 related to the Spin States of Cobalt
- Magnetic spectrum of the two-dimensional antiferromagnet La2CoO4 studied by inelastic neutron scattering
- Correlation induced half-metallicity in a ferromagnetic single-layered compound: SrCoO
- Evidence for a temperature-induced spin-state transition of Co3+ in La2-xSrxCoO4