English

Two-dimensional type-II Dirac fermions in layered oxides

Strongly Correlated Electrons 2018-08-15 v2 Materials Science Superconductivity

Abstract

Relativistic massless Dirac fermions can be probed with high-energy physics experiments, but appear also as low-energy quasi-particle excitations in electronic band structures. In condensed matter systems, their massless nature can be protected by crystal symmetries. Classification of such symmetry-protected relativistic band degeneracies has been fruitful, although many of the predicted quasi-particles still await their experimental discovery. Here we reveal, using angle-resolved photoemission spectroscopy, the existence of two-dimensional type-II Dirac fermions in the high-temperature superconductor La1.77_{1.77}Sr0.23_{0.23}CuO4_4. The Dirac point, constituting the crossing of dx2y2d_{x^2-y^2} and dz2d_{z^2} bands, is found approximately one electronvolt below the Fermi level (EFE_\mathrm{F}) and is protected by mirror symmetry. If spin-orbit coupling is considered, the Dirac point degeneracy is lifted and the bands acquire a topologically non-trivial character. In certain nickelate systems, band structure calculations suggest that the same type-II Dirac fermions can be realised near EFE_\mathrm{F}.

Keywords

Cite

@article{arxiv.1802.01376,
  title  = {Two-dimensional type-II Dirac fermions in layered oxides},
  author = {M. Horio and C. E. Matt and K. Kramer and D. Sutter and A. M. Cook and Y. Sassa and K. Hauser and M. Månsson and N. C. Plumb and M. Shi and O. J. Lipscombe and S. M. Hayden and T. Neupert and J. Chang},
  journal= {arXiv preprint arXiv:1802.01376},
  year   = {2018}
}
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