AC transport properties of single and bilayer graphene
arXiv:1001.3239 · doi:10.1016/j.physe.2009.11.076
Abstract
We have performed a theoretical study of electronic transport in single and bilayer graphene based on the standard linear-response (Kubo) formalism and continuum-model descriptions of the graphene band structure. We are focusing especially on the interband contribution to the optical conductivity. Analytical results are obtained for a variety of situations, which allow clear identification of features in the conductivity that are associated with relevant electronic energy scales. Our work extends previous numerical studies and elucidates ways to infer electronic properties of graphene samples from optical-conductivity measurements.
4 pages, 2 figures, contribution to EP2DS-18, to appear in Physica E
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Cited by in corpus (6)
- Properties of Graphene: A Theoretical Perspective
- Theory of resonant photon drag in monolayer graphene
- In-plane magnetoelectric response in bilayer graphene
- Dynamical symmetry breaking in a 2D electron gas with a spectral node
- Dynamical charge and pseudospin currents in graphene and possible Cooper pair formation
- Optical conductivity of single-layer graphene induced by temporal mass-gap fluctuations