English

Phase diagram for Hole-Doped Kitaev System on the Honeycomb Lattice

Strongly Correlated Electrons 2021-09-14 v2

Abstract

In extended Kitaev models on the honeycomb lattice, off-diagonal interactions (e.g. the Γ,Γ\Gamma, \Gamma^{'} terms) give rise to non-Kitaev quantum spin liquid (QSL) and several magnetically ordered phases. In the present work, we dope holes to the system and study the resultant tt-KK-Γ\Gamma-Γ\Gamma^{'} model by mean field theory. The interplay between the charge and spin degrees of freedom results in a rich phase diagram. Similar to doped cuprates, superconductors, pseudogap phases, fermi liquid, strange metal and paramagnetic phase are generated. What is different is that, more than one superconducting phases (including a topological one) and more than one pseudogap phases are obtained no matter what the original spin state is. The Chern number of the topological superconductor is either ν=±2\nu=\pm2 or ν=±1\nu=\pm1, depending on the ratio Γ/K\Gamma/ |K| in the spin channel. We further find that an intermediate in-plane magnetic field can slightly enlarge the size of the topological superconducting phase.

Keywords

Cite

@article{arxiv.2103.15286,
  title  = {Phase diagram for Hole-Doped Kitaev System on the Honeycomb Lattice},
  author = {Su-Ming Zhang and Zheng-Xin Liu},
  journal= {arXiv preprint arXiv:2103.15286},
  year   = {2021}
}