Optical conductivity of tilted higher pseudospin Dirac-Weyl cones
arXiv:2308.09700 · doi:10.1103/PhysRevB.108.085424
Abstract
We investigate the finite-frequency optical response of systems described at low energies by Dirac-Weyl Hamiltonians with higher pseudospin values. In particular, we examine the situation where a tilting term is applied in the Hamiltonian, which results in tilting of the Dirac electronic band structure. We calculate and discuss the optical conductivity for the cases , , and , in both two and three dimensions in order to demonstrate the expected signatures in the optical response. We examine both undertilted (type I) and overtilted (type II) as well as the critically-tilted case (type III). Along with the well-known case of , a pattern emerges for any . We note that in situations with multiple nested cones, such as happens for , the possibility of having one cone being type I while the other is type II allows for more rich variations in the optical signature, which we will label as type IV behavior. We also comment on the presence of optical sum rules in the presence of tilting. Finally, we discuss tilting in the -T model in two dimensions, which is a hybrid of the (honeycomb lattice) and (dice or T lattice) model with a variable Berry's phase. We contrast this model's conductivity with that of and as the resultant optical response has some similarities, although there are clear distinguishing features between the these cases.
20 pages, 15 figures
References in corpus (19)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Two Dimensional Atomic Crystals
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Quantum interference and Klein tunneling in graphene heterojunctions
- Magneto-optical conductivity in Graphene
- Evidence of Klein tunneling in graphene p-n junctions
- Multiple types of topological fermions in transition metal silicides
- Tilted anisotropic Dirac cones in quinoid-type graphene and alpha-(BEDT-TTF)_2I_3
- Determination of the electronic structure of bilayer graphene from infrared spectroscopy results
- Infrared spectroscopy of electronic bands in bilayer graphene
- Optical conductivity of bilayer graphene with and without an asymmetry gap
- Magneto-optics of massless Kane fermions: Role of the flat band and unusual Berry phase
- Effect of electron-hole asymmetry on optical conductivity in 8-Pmmn borophene
- The borophene sheet: A solid-state platform for space-time engineering
- Optical properties of a semi-Dirac material
- Optical properties of massive anisotropic tilted Dirac systems
- Magneto-optics of general pseudospin-s two-dimensional Dirac-Weyl fermions
- Tunable orbital susceptibility in - tight-binding models