Title of article
Lattice quantum electrodynamics for graphene Original Research Article
Author/Authors
A. Giuliani، نويسنده , , V. Mastropietro، نويسنده , , J. M. Porta، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2012
Pages
51
From page
461
To page
511
Abstract
The effects of gauge interactions in graphene have been analyzed up until now in terms of effective models of Dirac fermions. However, in several cases lattice effects play an important role and need to be taken consistently into account. In this paper, we introduce and analyze a lattice gauge theory model for graphene, which describes tight binding electrons hopping on the honeycomb lattice and interacting with a three-dimensional quantum image gauge field. We perform an exact renormalization group analysis, which leads to a renormalized expansion that is finite at all orders. The flow of the effective parameters is controlled thanks to Ward identities and a careful analysis of the discrete lattice symmetry properties of the model. We show that the Fermi velocity increases up to the speed of light and Lorentz invariance spontaneously emerges in the infrared. The interaction produces critical exponents in the response functions; this removes the degeneracy present in the non interacting case and allows us to identify the dominant excitations. Finally, we add mass terms to the Hamiltonian and derive by a variational argument the correspondent gap equations, which have an anomalous non-BCS form, due to the non trivial effects of the interaction.
Keywords
Graphene , Lattice gauge theory , Ward identity , renormalization group , critical exponent , Keku?e mass generation
Journal title
Annals of Physics
Serial Year
2012
Journal title
Annals of Physics
Record number
1206560
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