English

Lattice distortion induced first and second order topological phase transition in rectangular high-T$_{\rm c}$ superconducting monolayer

Mesoscale and Nanoscale Physics 2021-06-09 v1 Superconductivity

Abstract

We theoretically study the lattice distortion induced first and second order topological phase transition in rectangular FeSex_{x}Te1x_{1-x} monolayer. When compressing the lattice constant in one direction, our first principles calculation shows that the FeSex_xTe1x_{1-x} undergoes a band inversion at Γ\Gamma point in a wide dopping range, say x(0.0,0.7)x\in(0.0,0.7), which ensures coexistence of the topological band state and the high-Tc_{\rm c} superconductivity. This unidirectional pressure also leads to the C4_4 symmetry breaking which is necessary for the monolayer FeSex_xTe1x_{1-x} to support Majorana corner states in the either presence or absence of time-reversal symmetry. Particularly, we use kpk\cdot p methods to fit the band structure from the first principles calculation and found that the edge states along the (100)(100) and (010)(010) directions have different Dirac energy due to C4_4 symmetry breaking. This is essential to obtain Majorana corner states in D class without concerning the details of the superconducting pairing symmetries and Zeeman form, which can potentially bring advantages in the experimental implementation.

Keywords

Cite

@article{arxiv.1909.10402,
  title  = {Lattice distortion induced first and second order topological phase transition in rectangular high-T$_{\rm c}$ superconducting monolayer},
  author = {Li Chen and Bin Liu and Gang Xu and Xin Liu},
  journal= {arXiv preprint arXiv:1909.10402},
  year   = {2021}
}

Comments

6 pages, 4 figures