Exact results for intrinsic electronic transport in graphene
arXiv:1111.4862 · doi:10.1088/0256-307X/29/5/057201
Abstract
We present exact results for the electronic transport properties of graphene sheets connected to two metallic electrodes. Our results, obtained by transfer-matrix methods, are valid for all sheet widths and lengths. In the limit of large width-to-length ratio relevant to recent experiments, we find a Dirac-point conductivity of and a sub-Poissonian Fano factor of for armchair graphene; for the zigzag geometry these are respectively 0 and 1. Our results reflect essential effects from both the topology of graphene and the electronic structure of the leads, giving a complete microscopic understanding of the unique intrinsic transport in graphene.
4 pages,4figures
References in corpus (11)
- Electric Field Effect in Atomically Thin Carbon Films
- Bipolar supercurrent in graphene
- Quantum-limited shot noise in graphene
- Phase Coherent Transport of Charges in Graphene Quantum Billiard
- Evidence of the role of contacts on the observed electron-hole asymmetry in graphene
- Shot Noise in Ballistic Graphene
- Effects of metallic contacts on electron transport through graphene
- Shot Noise in Graphene
- Effective contact model for transport through weakly-doped graphene
- Transport through normal metal - graphene contacts
- Electronic transport in normal-conductor/graphene/normal-conductor junctions and conditions for insulating behavior at a finite charge-carrier density
Cited by in corpus (3)
- Landauer-Büttiker conductivity for spatially-dependent uniaxial strained armchair-terminated graphene nanoribbons
- Electronic transport of a large scale system studied by renormalized transfer matrix method: application to armchair graphene nanoribbons between quantum wires
- The organic functional group effect on the electronic structure of graphene nano-ribbon: A first-principles study