Measurement of graphite tight-binding parameters using high field magneto-reflectance
arXiv:1106.5948 · doi:10.1103/PhysRevB.84.153405
Abstract
frared reflectance spectroscopy at 4K in fields up to 31T. Both Schrödinger-like (K-point) and Dirac-like (H-point) Landau level transitions have been observed, and their magnetic field dispersion are analyzed by a newly-derived limiting case of the Slonczewski-Weiss-McClure model. The values of the band parameters are evaluated without using sophisticated conductivity peak lineshape analysis. In this work, several less-explored band parameters are determined from the experimental results and they are known to result in electron-hole asymmetry and the opening of an energy gap between the electron and hole bands in multilayer and bilayer graphene systems.
References in corpus (16)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Giant Intrinsic Carrier Mobilities in Graphene and Its Bilayer
- Charged Impurity Scattering in Graphene
- Universal dynamical conductance in graphite
- Infrared spectroscopy of Landau levels in graphene
- Cyclotron Resonance study of the electron and hole velocity in graphene monolayers
- Determination of the electronic structure of bilayer graphene from infrared spectroscopy results
- Cyclotron resonance in bilayer graphene
- Infrared spectroscopy of electronic bands in bilayer graphene
- Graphite from the viewpoint of Landau level spectroscopy: An effective graphene bilayer and monolayer
- Dirac fermions at the H point of graphite: Magneto-transmission studies
- Infrared probe of the anomalous magnetotransport of highly oriented pyrolytic graphite in the extreme quantum limit
- Millikelvin de Haas-van Alphen and Magnetotransport studies of Graphite
- Cyclotron resonance and Faraday rotation in graphite
- Band structure asymmetry of bilayer graphene revealed by infrared spectroscopy
Cited by in corpus (8)
- Magnetophonon resonance in graphite: High-field Raman measurements and electron-phonon coupling contributions
- Detection of Interlayer Interaction in Few-layer Graphene through Landau Level Spectroscopy
- Interaction-induced insulating state in thick multilayer graphene
- Decrypting the cyclotron effect in graphite using Kerr rotation spectroscopy
- Infrared magneto-spectroscopy of graphite in tilted fields
- Ultra-high magnetic field study of the layer split bands in Graphite
- Tight-binding description of Landau levels of graphite in tilted magnetic fields
- Beating oscillations of magneto-optical spectra in simple hexagonal graphite