Cyclotron Resonance study of the electron and hole velocity in graphene monolayers
arXiv:0704.0410 · doi:10.1103/PhysRevB.76.081406
Abstract
We report studies of cyclotron resonance in monolayer graphene. Cyclotron resonance is detected using the photoconductive response of the sample for several different Landau level occupancies. The experiments measure an electron velocity at the K- (Dirac) point of = 1.093 x 10 ms and in addition detect a significant asymmetry between the electron and hole bands, leading to a difference in the electron and hole velocities of 5% by energies of 125 meV away from the Dirac point.
References in corpus (2)
Cited by in corpus (16)
- The electronic properties of graphene
- Giant Phonon-induced Conductance in Scanning Tunneling Spectroscopy of Gate-tunable Graphene
- AC conductivity of graphene: from tight-binding model to 2+1-dimensional quantum electrodynamics
- On the universal AC optical background in graphene
- How perfect can graphene be?
- Cyclotron resonance in bilayer graphene
- Collective cyclotron motion of the relativistic plasma in graphene
- Linear response of doped graphene sheets to vector potentials
- Graphite from the viewpoint of Landau level spectroscopy: An effective graphene bilayer and monolayer
- Cyclotron motion in graphene
- Spin-resolved Quantum Interference in Graphene
- Dirac electrons in graphene-based quantum wires and quantum dots
- Non-linear effects in the cyclotron resonance of a massless quasi-particle in graphene
- Zero modes, energy gap, and edge states of anisotropic honeycomb lattice in a magnetic field
- Asymmetrically Doped Polyacetylene
- Localized Collective Excitations in Doped Graphene in Strong Magnetic Fields