Magnetoelectronic properties of graphene dressed by a high-frequency field
arXiv:1511.03522 · doi:10.1103/PhysRevB.93.115420
Abstract
We solved the Schrödinger problem for electrons in graphene subjected to both a stationary magnetic field and a strong high-frequency electromagnetic wave (dressing field). The found solutions of the problem are used to describe the magnetoelectronic properties of dressed graphene. It follows from the present analysis that both optical characteristics and electronic transport are very sensitive to the dressing field. Particularly, the field strongly changes the spectra of optical absorption and the Shubnikov-de Haas oscillations. As a result, the developed theory opens a way for controlling magnetoelectronic properties of graphene with light.
Published version
References in corpus (16)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Photovoltaic Hall effect in graphene
- Quantum Anomalous Hall Effect in Graphene from Rashba and Exchange Effects
- Giant Faraday rotation in single- and multilayer graphene
- Multicomponent fractional quantum Hall effect in graphene
- Irradiated graphene as a tunable Floquet topological insulator
- Intrinsic Terahertz Plasmons and Magnetoplasmons in Large Scale Monolayer Graphene
- Control of electronic transport in graphene by electromagnetic dressing
- Transport properties of a two-dimensional electron gas dressed by light
- Landau Level Collapse in Gated Graphene Structures
- Transition to Landau Levels in Graphene Quantum Dots
- Control of spin dynamics in a two-dimensional electron gas by electromagnetic dressing
- Laser induced modulation of the Landau level structure in single-layer graphene
- Persistent current induced by quantum light
- Lamb Shift of Energy Levels in Quantum Rings
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