R. Shiina et al., Atomic spin, molecular orbitals, and anomalous antiferromagnetism in insulating V2O3 - art. no. 144422, PHYS REV B, 6314(14), 2001, pp. 4422
A theory of the orbital ordering and the anomalous antiferromagetism in V2O
3 is developed on the basis of a realistic description of the V3+ atomic st
ates. The effective electronic degrees of freedom in the insulating phase a
re found to be successively reduced to a set of molecular orbitals of V pai
rs along the trigonal axis. We derive the molecular interactions for the lo
west orbital doublet and analyze their possible ordered phases in analogy w
ith the Kugel-Khomskii model for the cubic perovskites. It is shown that th
e complex spin structure of V2O3 is stabilized uniquely in a reasonable par
ameter region, and that it is associated with an unusual ferro-type orbital
order involving the intramolecular correlation of V atomic orbitals. This
characteristic orbital state is shown to be consistent with the monoclinic
lattice distortion, the anisotropy of spin exchange couplings, and the spin
orientation in the antiferromagnetic phase of V2O3. Based on those analyse
s, improved molecular orbital states are proposed and recent experiments on
neutron and x-ray scattering are discussed.