arXiv:1609.01426·v1·High Energy Physics — Phenomenology
The 1-loop vacuum polarization for a graphene-like medium in an external magnetic field; corrections to the Coulomb potential
Abstract
I calculate the 1-loop vacuum polarization for a photon of momentum interacting with the electrons of a thin medium of thickness simulating graphene, in the presence of a constant and uniform external magnetic field orthogonal to it (parallel to ). Calculations are done with the techniques of Schwinger, adapted to the geometry and Hamiltonian under scrutiny. The situation gets more involved than for the electron self-energy because the photon is now allowed to also propagate outside the medium. This makes factorize into a quantum, "reduced" and a transmittance function , in which the geometry of the sample and the resulting confinement of the vertices play major roles. This drags the results away from reduced QED on a 2-brane. The finiteness of at is an essential ingredient to fulfill suitable renormalization condition for and to fix the corresponding counterterms. Their connection with the transversality of is investigated. The corrections to the Coulomb potential and their dependence on strongly differ from QED.
Comments: 35 pages, 9 figures