Broadband strong optical dichroism in topological Dirac semimetals with Fermi velocity anisotropy
arXiv:2005.03363 · doi:10.1088/1674-1056/ab928e
Abstract
Prototypical three-dimensional (3D) topological Dirac semimetals (DSMs), such as CdAs and NaBi, contain electrons that obey a linear momentum-energy dispersion with different Fermi velocities along the three orthogonal momentum dimensions. Despite being extensively studied in recent years, the inherent \emph{Fermi velocity anisotropy} has often been neglected in the theoretical and numerical studies of 3D DSMs. Although this omission does not qualitatively alter the physics of light-driven massless quasiparticles in 3D DSMs, it does \emph{quantitatively} change the optical coefficients which can lead to nontrivial implications in terms of nanophotonics and plasmonics applications. Here we study the linear optical response of 3D DSMs for general Fermi velocity values along each direction. Although the signature conductivity-frequency scaling, , of 3D Dirac fermion is well-protected from Fermi velocity anisotropy, the linear optical response exhibits strong linear dichroism as captured by the \emph{universal} extinction ratio scaling law, (where denotes the three spatial coordinates , and is the -direction Fermi velocity), which is independent of frequency, temperature, doping, and carrier scattering lifetime. For CdAs and NaBi, an exceptionally strong extinction ratio larger than 15 and covering broad terahertz window is revealed. Our findings shed new light on the role of Fermi velocity anisotropy in the optical response of Dirac semimetals and open up novel polarization-sensitive functionalities, such as photodetection and light modulation.
8 pages, 3 figures
References in corpus (13)
- Graphene Plasmonics: Challenges and Opportunities
- Phase transition between the quantum spin Hall and insulator phases in 3D: emergence of a topological gapless phase
- Classification of stable three-dimensional Dirac semimetals with nontrivial topology
- Topological nodal line semimetals
- Topological Semimetals
- Non-linear electromagnetic response of graphene
- First Principles Studies on 3-Dimentional Strong Topological Insulators: Bi2Te3, Bi2Se3 and Sb2Te3
- Unexpected mass acquisition of Dirac fermions at the quantum phase transition of a topological insulator
- Ultrafast Broadband Photodetectors based on Three-dimensional Dirac Semimetal Cd3As2
- Tuning phase transition between quantum spin Hall and ordinary insulating phases
- Universal phase diagrams for the quantum spin Hall systems
- Interacting Dirac liquid in three-dimensional semimetals
- Topological transport in Dirac electronic systems: A concise review