English

Electronic structure of vacancy-ordered iron-selenide K$_{0.5}$Fe$_{1.75}$Se$_2$

Superconductivity 2013-04-15 v3 Materials Science Strongly Correlated Electrons

Abstract

The electronic structure of the vacancy-ordered K0.5_{0.5}Fe1.75_{1.75}Se2_2 iron-selenide compound (278 phase) is studied using the first-principles density functional method. The ground state of the 278 phase is stripe-like antiferromagnetic, and its bare electron susceptibility shows a large peak around (π,π)(\pi, \pi) in the folded Brillouin zone. Near Fermi level, the density of states are dominated by the Fe-3d orbitals, and both electron-like and hole-like Fermi surfaces appear in the Brillouin zone. Unfolded band structure shows limited similarities to a hole doped 122 phase. With 0.1e electron doping, the susceptibility peak is quickly suppressed and broadened; while the two-dimensionality of the electron-like Fermi surfaces are greatly enhanced, resulting in a better nesting behavior. Our study should be relevant to the recently reported superconducting phase K0.5+x_{0.5+x}Fe1.75+y_{1.75+y}Se2_2 with both xx and yy very tiny.

Keywords

Cite

@article{arxiv.1301.7655,
  title  = {Electronic structure of vacancy-ordered iron-selenide K$_{0.5}$Fe$_{1.75}$Se$_2$},
  author = {Chao Cao and Fuchun Zhang},
  journal= {arXiv preprint arXiv:1301.7655},
  year   = {2013}
}

Comments

Updated with correct susceptibility data figures