English

Pseudo Quantum Electrodynamics and Chern-Simons theory Coupled to Two-dimensional Electrons

High Energy Physics - Theory 2020-07-01 v4

Abstract

We study a nonlocal theory that combines both the Pseudo quantum electrodynamics (PQED) and Chern-Simons actions among two-dimensional electrons. In the static limit, we conclude that the competition of these two interactions yields a Coulomb potential with a screened electric charge given by e2/(1+θ2)e^2/(1+\theta^2), where θ\theta is the dimensionless Chern-Simons parameter. This could be useful for describing the substrate interaction with two-dimensional materials and the doping dependence of the dielectric constant in graphene. In the dynamical limit, we calculate the effective current-current action of the model considering Dirac electrons. We show that this resembles the electromagnetic and statistical interactions, but with two different overall constants, given by e2/(1+θ2)e^2/(1+\theta^2) and e2θ/(1+θ2)e^2\theta/(1+\theta^2). Therefore, the θ\theta-parameter does not provide a topological mass for the Gauge field in PQED, which is a relevant difference in comparison with quantum electrodynamics. Thereafter, we apply the one-loop perturbation theory in our model. Within this approach, we calculate the electron self-energy, the electron renormalized mass, the corrected gauge-field propagator, and the renormalized Fermi velocity for both high- and low-speed limits, using the renormalization group. In particular, we obtain a maximum value of the renormalized mass for θ0.36\theta\approx 0.36. This behavior is an important signature of the model and relations with doping control of band gap size are also discussed in the conclusions.

Keywords

Cite

@article{arxiv.2001.05378,
  title  = {Pseudo Quantum Electrodynamics and Chern-Simons theory Coupled to Two-dimensional Electrons},
  author = {Gabriel C. Magalhães and Van S. Alves and Eduardo C. Marino and Leandro O. Nascimento},
  journal= {arXiv preprint arXiv:2001.05378},
  year   = {2020}
}
R2 v1 2026-06-23T13:12:03.688Z