Photon Absorption of Two-dimensional Nonsymmorphic Dirac Semimetals
Amarnath Chakraborty, Guang Bian, Giovanni Vignale

TL;DR
This paper investigates the optical absorption properties of nonsymmorphic 2D Dirac semimetals, revealing how anisotropy, magnetic fields, and polarization influence their optical responses, with implications for tunable magneto-optic devices.
Contribution
It provides the first detailed analysis of optical absorption in nonsymmorphic 2D Dirac semimetals considering anisotropy and magnetic field effects.
Findings
Optical absorption depends strongly on anisotropy and photon polarization.
In-plane magnetic fields induce Van-Hove singularities, enhancing absorption at specific frequencies.
Different contributions from Dirac cones at high-symmetry points enable valley-selective excitation.
Abstract
Two-dimensional Dirac semimetals have attracted much attention because of their linear energy dispersion and non-trivial Berry phase. Graphene-like 2D Dirac materials are gapless only within certain approximations, e.g., if spin-orbit coupling (SOC) is neglected. It has recently been reported that materials with nonsymmorphic crystal lattice possess symmetry-enforced Dirac-like band dispersion around certain high-symmetry momenta even in the presence of SOC. Here we calculate the optical absorption coefficient of nonsymmorphic semimetals, such as -bismuthene, which hosts two anisotropic Dirac cones with different Fermi velocities along and directions.We find that the optical absorption coefficient depends strongly on the anisotropy factor and the photon polarization. When a magnetic field is applied perpendicular to the plane of the material, the absorption coefficient…
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