English

Flat optical conductivity in ZrSiS due to two-dimensional Dirac bands

Mesoscale and Nanoscale Physics 2017-11-03 v1 Materials Science Strongly Correlated Electrons

Abstract

ZrSiS exhibits a frequency-independent interband conductivity σ(ω)=const(ω)σflat\sigma(\omega) = \rm{const}(\omega) \equiv \sigma_{\rm{flat}} in a broad range from 250 to 2500 cm1^{-1} (30 - 300 meV). This makes ZrSiS similar to (quasi)two-dimensional Dirac electron systems, such as graphite and graphene. We assign the flat optical conductivity to the transitions between quasi-two-dimensional Dirac bands near the Fermi level. In contrast to graphene, σflat\sigma_{\rm{flat}} is not supposed to be universal but related to the length of the nodal line in the reciprocal space, k0k_{0}. When σflat\sigma_{\rm{flat}} and k0k_{0} are connected by a simple model, we find good agreement between experiment and theory. Due to the spin-orbit coupling, the discussed Dirac bands in ZrSiS possess a small gap Δ\Delta, for which we determine an upper bound max(Δ\Delta) = 30 meV from our optical measurements. At low temperatures the momentum-relaxation rate collapses, and the characteristic length scale of momentum relaxation is of the order of microns below 50 K.

Keywords

Cite

@article{arxiv.1707.09620,
  title  = {Flat optical conductivity in ZrSiS due to two-dimensional Dirac bands},
  author = {M. B. Schilling and L. M. Schoop and B. V. Lotsch and M. Dressel and A. V. Pronin},
  journal= {arXiv preprint arXiv:1707.09620},
  year   = {2017}
}

Comments

5 pages

R2 v1 2026-06-22T21:01:37.575Z