Irradiated bilayer graphene
arXiv:1011.3043 · doi:10.1088/0957-4484/22/1/015203
Abstract
We describe the gated bilayer graphene system when it is subjected to intense terahertz frequency electromagnetic radiation. We examine the electron band structure and density of states via exact diagonalization methods within Floquet theory. We find that dynamical states are induced which lead to modification of the band structure. We first examine the situation where there is no external magnetic field. In the unbiased case, dynamical gaps appear in the spectrum which manifest as dips in the density of states. For finite interlayer bias (where a static gap is present in the band structure of unirradiated bilayer graphene), dynamical states may be induced in the static gap. These states can show a high degree of valley polarization. When the system is placed in a strong magnetic field, the radiation induces coupling between the Landau levels which allows dynamical levels to exist. For strong fields, this means the Landau levels are smeared to form a near-continuum of states.
14 pages, accepted for publication in Nanotechnology
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Cited by in corpus (16)
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- Optically engineering the topological properties of a spin Hall insulator
- Optical response of graphene under intense terahertz fields
- Radiation effects on the electronic structure of bilayer graphene
- Dynamical polarizability of graphene irradiated by circularly polarized ac electric fields
- Polar Kerr Effect and Time Reversal Symmetry Breaking in Bilayer Graphene
- One-way transport in laser-illuminated bilayer graphene: A Floquet isolator
- Optically induced Lifshitz transition in bilayer graphene
- Valley-polarization in biased bilayer graphene using circularly polarized light
- Valley-selective Floquet Chern Flat Bands in Twisted Multilayer Graphene
- Laser induced modulation of the Landau level structure in single-layer graphene
- Tuning of Bilayer Graphene Heterostructure by Horizontally Incident Circular Polarized Light
- Seeking Maxwell's Demon in a non-reciprocal quantum ring
- Modulating dichroism and optical conductivity in bilayer graphene under intense electromagnetic field irradiation
- Transport properties of vertical heterostructures under light irradiation
- Topological frequency conversion in rhombohedral multilayer graphene