Phenomenological study of the electronic transport coefficients of graphene
arXiv:0710.2283 · doi:10.1103/PhysRevB.76.073412
Abstract
Using a semi-classical approach and input from experiments on the conductivity of graphene, we determine the electronic density dependence of the electronic transport coefficients -- conductivity, thermal conductivity and thermopower -- of doped graphene. Also the electronic density dependence of the optical conductivity is obtained. Finally we show that the classical Hall effect (low field) in graphene has the same form as for the independent electron case, characterized by a parabolic dispersion, as long as the relaxation time is proportional to the momentum.
4 pages, 1 figure
References in corpus (10)
- Electric Field Effect in Atomically Thin Carbon Films
- Unconventional Integer Quantum Hall effect in graphene
- Quantum-limited shot noise in graphene
- Quantum Hall Ferromagnetism in Graphene
- Quantum transport of massless Dirac fermions in graphene
- Anomalous Hall effect in 2D Dirac band: link between Kubo-Streda formula and semiclassical Boltzmann equation approach
- On the minimal conductivity of graphene
- Robust Transport Properties in Graphene
- Notes on the minimal longitudinal dc conductivity of perfect bilayer graphene
- Unusual field and temperature dependence of Hall effect in graphene
Cited by in corpus (29)
- The electronic properties of graphene
- A tight-binding approach to uniaxial strain in graphene
- Colloquium: The transport properties of graphene: An introduction
- The optical conductivity of graphene in the visible region of the spectrum
- Thermoelectric and Magnetothermoelectric Transport Measurements of Graphene
- Electronic transport in graphene: A semi-classical approach including midgap states
- Mobility in Semiconducting Graphene Nanoribbons: Phonon, Impurity, and Edge Roughness Scattering
- Thermoelectric properties of Weyl and Dirac semimetals
- Slow imbalance relaxation and thermoelectric transport in graphene
- Voltage and temperature dependencies of conductivity in gated graphene
- Conductivity of suspended and non-suspended graphene at finite gate voltage
- Electric transport and magnetic properties in multilayer graphene
- Effect of Holstein phonons on the electronic properties of graphene
- Dirac electrons in graphene-based quantum wires and quantum dots
- Conductivity of a graphene strip: width and gate-voltage dependencies
- Thermo-Electric Power of Dirac Fermions in Graphene
- Heat transport by Dirac fermions in normal/superconducting graphene junctions
- Numerical calculation of the Casimir-Polder interaction between a graphene sheet with vacancies and an atom
- Vertex renormalization in dc conductivity of doped chiral graphene
- Small Fermi Surfaces and Strong Correlation Effects in Dirac Materials with Holography
- Impact of graphene on the polarizability of a neighbour nanoparticle: a dyadic Green's function study
- Fundamental Distinction between Intrinsic and Extrinsic Nonlinear Thermal Hall Effects
- Nonequilibrium mesoscopic conductance fluctuations as the origin of 1/f noise in epitaxial graphene
- Spectral and optical properties of doped graphene with charged impurities in the self-consistent Born approximation
- Effect of piezoelectric substrate on phonon-drag thermopower in monolayer graphene
- Charge carrier mobility degradation in graphene sheet under induced strain
- Temperature Dependence of the Response Functions of Graphene: Impact on Casimir and Casimi-Polder Forces in and out of Thermal Equilibrium
- On the Wiedemann-Franz law violation in Graphene and quark-gluon plasma systems
- Optical conductivity of a Dirac-Fermi liquid