Sub-Poissonian Shot Noise in Graphene
Abstract
We calculate the mode-dependent transmission probability of massless Dirac fermions through an ideal strip of graphene (length L, width W, no impurities or defects) to obtain the conductance and shot noise as a function of Fermi energy. We find that the minimum conductivity of order e2/h at the Dirac point (when the electron and hole excitations are degenerate) is associated with a maximum of the Fano factor (the ratio of noise power and mean current). For short and wide graphene strips the Fano factor at the Dirac point equals 1/3, 3 times smaller than for a Poisson process. This is the same value as for a disordered metal, which is remarkable since the classical dynamics of the Dirac fermions is ballistic.
- Publication:
-
Physical Review Letters
- Pub Date:
- June 2006
- DOI:
- arXiv:
- arXiv:cond-mat/0603315
- Bibcode:
- 2006PhRvL..96x6802T
- Keywords:
-
- 73.50.Td;
- 73.23.Ad;
- 73.63.-b;
- Noise processes and phenomena;
- Ballistic transport;
- Electronic transport in nanoscale materials and structures;
- Condensed Matter - Mesoscopic Systems and Quantum Hall Effect
- E-Print:
- 6 pages, 3 figures