English

The Schwinger mechanism and graphene

Mesoscale and Nanoscale Physics 2009-02-23 v4 High Energy Physics - Phenomenology High Energy Physics - Theory Nuclear Theory

Abstract

The Schwinger mechanism, the production of charged particle-antiparticle pairs in a macroscopic external electric field, is derived for 2+1 dimensional theories. The rate of pair production per unit area for four species of massless fermions, with charge qq, in a constant electric field EE is given by π23/2c~1/2(qE)3/2 \pi^{-2} \hbar^{-3/2} \tilde{c}^{-1/2} (q E)^{3/2} where c~\tilde{c} is the speed of light for the two-dimensional system. To the extent undoped graphene behaves like the quantum field-theoretic vacuum for massless fermions in 2+1 dimensions, the Schwinger mechanism should be testable experimentally. A possible experimental configuration for this is proposed. Effects due to deviations from this idealized picture of graphene are briefly considered. It is argued that with present day samples of graphene, tests of the Schwinger formula may be possible.

Keywords

Cite

@article{arxiv.0708.1471,
  title  = {The Schwinger mechanism and graphene},
  author = {Danielle Allor and Thomas D. Cohen and David A. McGady},
  journal= {arXiv preprint arXiv:0708.1471},
  year   = {2009}
}

Comments

Extensive revisions. The distinction between the vacuum decay rate and the pair production rate in the Schwinger mechanism is now stressed. The discussion of quality of sample needed for a viable experimental test has been significantly expanded. References added