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Fermion self-energy and effective mass in a noisy magnetic background

ORAL

Abstract

In this article, we consider the propagation of QED fermions in the presence of a classical background magnetic field with white-noise stochastic fluctuations. The effects of the magnetic field fluctuations are incorporated into the fermion and photon propagators in a quasiparticle picture, which we developed in previous works using the replica trick. By working in the very strong-field limit, here we explicitly calculate the fermion self-energy involving radiative contributions at first order in αem, in order to obtain the noise-averaged mass of the fermion propagating in the fluctuating magnetized medium. Our analytical results reveal a leading double-logarithmic contribution ∼( ln |eB|/m2)2 to the mass, with an imaginary part representing a spectral broadening proportional to the magnetic noise autocorrelation Δ. While a uniform magnetic field already breaks Lorentz invariance, inducing the usual separation into two orthogonal subspaces (perpendicular and parallel with respect to the field), the presence of magnetic noise further breaks the remaining symmetry, thus leading to distinct spectral widths associated with fermion and antifermion, and their spin projection in the quasiparticle picture.

Publication: J.Castaño-Yepes and E. Muñoz, "Fermion self-energy and effective mass in a noisy magnetic background", Physical Review D 110, 056003 (2024)<br><br>J. Castaño-Yepes and E. Muñoz, "Exploring magnetic fluctuation effects in QED gauge fields: Implications for mass generation", Phys. Rev. D 109, 056007 (2024).<br><br>J. Castaño-Yepes, M. Loewe, E. Muñoz, J. Rojas, and R. Zamora, "QED fermions in a noisy magnetic field background", Phys. Rev. D 107, 096014 (2023).

Presenters

  • Enrique Munoz

    Pontifical Catholic University

Authors

  • Enrique Munoz

    Pontifical Catholic University

  • Jorge Castaño-Yepes

    Pontificia Universidad Catolica de Chile