Phonon spectroscopy through the electronic density of states in graphene
arXiv:0905.0894 · doi:10.1103/PhysRevB.80.081415
Abstract
We study how phonon structure manifests itself in the electronic density of states of graphene. A procedure for extracting the value of the electron-phonon renormalization is developed. In addition, we identify direct phonon structures. With increasing doping, these structures, along with , grow in amplitude and no longer display particle-hole symmetry.
5 pages
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Cited by in corpus (16)
- Dynamical conductivity of AA-stacked bilayer graphene
- Effect of electron-phonon interaction on spectroscopies in graphene
- Magneto-optical conductivity of graphene on polar substrates
- Magneto-optical conductivity in graphene including electron-phonon coupling
- Full Momentum and Energy Resolved Spectral Function of a 2D Electronic System
- Emergence of Plasmaronic Structure in the Near Field Optical Response of Graphene
- Effects of electron-phonon coupling on Landau levels in graphene
- Effect of electron-phonon coupling on energy and density of states renormalizations of dynamically screened graphene
- Phonon structures in the electronic density of states of graphene in magnetic field
- Observation of Giant Quantized Phonon Modes in Graphene via Tunneling Spectra
- Gate-tunable Kondo resistivity and dephasing rate in graphene studied by numerical renormalization group calculations
- The Hubbard model on a triangular lattice -- pseudogap due to spin-density-wave fluctuations
- Optical Self Energy in Graphene due to Correlations
- Electron-phonon correlations on spin texture of gapped helical Dirac Fermions
- Impact of Electron-Phonon Coupling on Near-Field Optical Spectra
- Distinguishing Coulomb and electron-phonon interactions for massless Dirac fermions