English

Orbital Selective Mott Transition Effects and Non-Trivial Topology of Iron Chalcogenide

Strongly Correlated Electrons 2024-04-02 v2

Abstract

The iron-based superconductor FeSe1x_{1-x}Tex_{x} (FST) has recently gained significant attention as a host of two distinct physical phenomena: (ii) Majorana zero modes which can serve as potential topologically protected qubits, and (iiii) a realization of the orbital selective Mott transition (OSMT). In this Letter, we connect these two phenomena and provide new insights into the interplay between strong electronic correlations and non-trivial topology in FST. Using linearized quasiparticle self-consistent GW plus dynamical mean-field theory, we show that the topologically protected Dirac surface state has substantial Fe(dxyd_{xy}) character. The proximity to the OSMT plays a dual role, it facilitates the appearance of the topological surface state by bringing the Dirac cone close to the chemical potential, but destroys the Z2_{2} topological superconductivity when the system is too close to the orbital selective Mott phase (OSMP). We derive a reduced effective Hamiltonian that describes the topological band. Its parameters capture all the chemical trends found in the first principles calculation. Our findings provide a framework for further study of the interplay between strong electronic correlations and non-trivial topology in other iron-based superconductors.

Keywords

Cite

@article{arxiv.2304.05002,
  title  = {Orbital Selective Mott Transition Effects and Non-Trivial Topology of Iron Chalcogenide},
  author = {Minjae Kim and Sangkook Choi and Walber Hugo Brito and Gabriel Kotliar},
  journal= {arXiv preprint arXiv:2304.05002},
  year   = {2024}
}

Comments

5 pages, 4 figures, and supplemental material