Infrared study of ellipsoidal nodal ring semimetal SrAs<sub>3</sub>
ORAL
Abstract
Dirac/Weyl semimetals, a novel class of quantum materials, are characterized by linearly dispersing energy bands from nodal point that obey relativistic Hamiltonians. For nodal point and nodal line Dirac/Weyl semimetals, optical studies showed unique features such as constant/linear optical conductivity σ1IB(ω) ∝ ω(deff-2)/z (deff = effective lattice dimension and z = energy dispersion dimension) . Here we measured polarization-dependent optical reflectivity on SrAs3 single crystals, a nodal-ring semimetal where Ef crosses only non-trivial band without interruption from trivial bands. For E//x, a flat optical absorption occurs up to 130meV, whereas drastically different behavior is observed for E//z. A SOC gap transition appears at 35meV for both polarizations. We perform theoretical calculations of σ1IB(ω) based on low-energy model Hamiltonian and DFT band calculations, and compare them with experimental σ1IB(ω). The Fermi surface structure (nodal ring vs nodal ellipsoid) and band dispersion (linear vs quadratic) of SrAs3 are unveiled from this comparative study.
*This research was supported by Basic Science Research Program through the National Research Foundation of Korea(NRF) funded by the Ministry of Education(2018R1A6A1A06024977)
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Presenters
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Jiwon Jeon
- University of Seoul, Natural Science Research Institute