English

Critical behaviour of reduced QED$_{4,3}$ and dynamical fermion gap generation in graphene

High Energy Physics - Theory 2016-12-15 v2 Mesoscale and Nanoscale Physics

Abstract

The dynamical generation of a fermion gap in graphene is studied at the infra-red Lorentz-invariant fixed point where the system is described by an effective relativistic-like field theory: reduced QED4,3_{4,3} with NN four component fermions (N=2N=2 for graphene), where photons are (3+1)(3+1)-dimensional and mediate a fully retarded interaction among (2+1)(2+1)-dimensional fermions. A correspondence between reduced QED4,3_{4,3} and QED3_3 allows us to derive an exact gap equation for QED4,3_{4,3} up to next-to-leading order. Our results show that a dynamical gap is generated for α>αc\alpha > \alpha_c where 1.03<αc<1.081.03 < \alpha_c < 1.08 in the case N=2N=2 or for N<NcN < N_c where NcN_c is such that αc\alpha_c \to \infty and takes the values 3.24<Nc<3.363.24 < N_c < 3.36. The striking feature of these results is that they are in good agreement with values found in models with instantaneous Coulomb interaction. At the fixed point: α=1/137αc\alpha = 1/137 \ll \alpha_c, and the system is therefore in the semi-metallic regime in accordance with experiments.

Keywords

Cite

@article{arxiv.1610.00934,
  title  = {Critical behaviour of reduced QED$_{4,3}$ and dynamical fermion gap generation in graphene},
  author = {A. V. Kotikov and S. Teber},
  journal= {arXiv preprint arXiv:1610.00934},
  year   = {2016}
}

Comments

(v2) Accepted for publication in PRD. Short discussion and some references added at the end of Sec V (per referee's comments). No change in results. 7 pages. (v1) 7 pages