English

Strongly correlated superconductor with polytypic 3D Dirac points

Superconductivity 2020-09-29 v2

Abstract

Topological superconductors should be able to provide essential ingredients for quantum computing, but are very challenging to realize. Spin-orbit interaction in iron-based superconductors opens the energy gap between the pp-states of pnictogen and dd-states of iron very close to the Fermi level, and such pp-states have been recently experimentally detected. Density functional theory predicts existence of topological surface states within this gap in FeTe1x_{1-x}Sex_x making it an attractive candidate material. Here we use synchrotron-based angle-resolved photoemission spectroscopy and band structure calculations to demonstrate that FeTe1x_{1-x}Sex_x (x=0.45) is a superconducting 3D Dirac semimetal hosting type-I and type-II Dirac points and that its electronic structure remains topologically trivial. We show that the inverted band gap in FeTe1x_{1-x}Sex_x can possibly be realized by further increase of Te content, but strong correlations reduce it to a sub-meV size, making the experimental detection of this gap and corresponding topological surface states very challenging, not to mention exact matching with the Fermi level. On the other hand, the pdp-d and ddd-d interactions are responsible for the formation of extremely flat band at the Fermi level pointing to its intimate relation with the mechanism of high-Tc_c superconductivity in IBS.

Keywords

Cite

@article{arxiv.1909.10806,
  title  = {Strongly correlated superconductor with polytypic 3D Dirac points},
  author = {Sergey Borisenko and Volodymyr Bezguba and Alexander Fedorov and Yevhen Kushnirenko and Vladimir Voroshnin and Mihai Sturza and Saicharan Aswartham and Alexander Yaresko},
  journal= {arXiv preprint arXiv:1909.10806},
  year   = {2020}
}

Comments

10 pages, 5 figures, 28 references

R2 v1 2026-06-23T11:24:05.549Z