Vacancy-driven orbital and magnetic order in (K,Tl,Cs)$_y$Fe$_{2-x}$Se$_2$

ORAL

Abstract

We investigate the effects of the $\sqrt{5}\times\sqrt{5}$ Fe vacancy ordering on the orbital and magnetic order in (K,Tl,Cs)$_y$Fe$_{2-x}$Se$_2$ using a three-orbital ($t_{2g}$) tight-binding Hamiltonian with generalized Hubbard interactions. We find that vacancy order enhances electron correlations, resulting in the onset of a block antiferromagnetic phase with large moments at smaller interaction strengths. In addition, vacancy ordering modulates the kinetic energy differently for the three $t_{2g}$ orbitals. This results in a breaking of the degeneracy between the $d_{xz}$ and $d_{yz}$ orbitals on each Fe site, and the onset of orbital order. Consequently, we obtain a novel inverse relation between orbital polarization and the magnetic moment. We predict that a transition from high-spin to low-spin states accompanied by a crossover from orbitally-disordered to orbitally-ordered states will be driven by doping the parent compound with electrons, which can be verified by neutron scattering and soft X-ray measurements.

*support by NSF DMR-0940992 and the Center for Emergent Superconductivity, a DOE Energy Frontier Research Center, Grant No. DE-AC0298CH1088

Authors

  • Weicheng Lv

    • Department of Physics, University of Illinois
  • Wei-Cheng Lee

    • University of Illinois at Urbana-Champaign
    • Department of Physics, University of Illinois
  • Philip Phillips

    • Department of Physics, University of Illinois
    • Dept. of Physics, University of Illinois, Urbana, IL 61801
    • University of Illinois at Urbana Champaign
    • University of Illinois, Urbana-Champaign