English

QED Fermions in a noisy magnetic field background: The effective action approach

High Energy Physics - Theory 2023-08-24 v1

Abstract

We consider the effects of a noisy magnetic field background over the fermion propagator in QED, as an approximation to the spatial inhomogeneities and time-fluctuations that would naturally arise in certain physical scenarios, such as heavy-ion collisions or the quark-gluon plasma in the early stages of the evolution of the Universe. We considered a classical, finite and uniform average magnetic field background B(x)Δ=B\langle \mathbf{B}(\mathbf{x})\rangle_{\Delta} = \mathbf{B}, subject to white-noise fluctuations with auto-correlation of magnitude ΔB\Delta_B. By means of the Schwinger representation of the propagator in the average magnetic field as a reference system, we used the replica formalism to study the effects of the magnetic noise at the mean field level, in terms of a vector order parameter Qj=\iieΔBψˉγjψΔQ_j = \ii e \Delta_B\langle\langle \bar{\psi}\gamma_j\psi \rangle\rangle_{\Delta} whose magnitude represents the ensemble average (over magnetic noise) of the fermion currents. We identified the region where this order parameter acquires a finite value, thus breaking the U(1)U(1)-symmetry of the model due to the presence of the magnetic noise.

Keywords

Cite

@article{arxiv.2308.12249,
  title  = {QED Fermions in a noisy magnetic field background: The effective action approach},
  author = {Jorge David Castaño-Yepes and Marcelo Loewe and Enrique Muñoz and Juan Cristóbal Rojas},
  journal= {arXiv preprint arXiv:2308.12249},
  year   = {2023}
}

Comments

14 pages, 7 figures. This work is an extension of arXiv:2211.16985. arXiv admin note: text overlap with arXiv:2211.16985