Evaluation of QED cross sections in strong magnetic fields

Fuente: arXiv
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Auteur principal: Kiuru, Olavi
Format: Preprint
Publié: 2026
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author Kiuru, Olavi
author_facet Kiuru, Olavi
contents Quantum electrodynamics (QED) becomes nonlinear when the magnetic field strength surpasses the critical Schwinger limit $B_Q \approx 4.41\cdot 10^{13}$ G. This limit is surpassed, for example, in the magnetospheres of a specific class of neutron stars known as magnetars, which has important consequences for magnetospheric plasma dynamics due to modifications in scattering cross sections. Using a formalism previously applied to the study of magnetic catalysis, I calculate the cross sections of all tree-level 1-to-2, 2-to-1, and 2-to-2 particle QED scattering processes that do not include a photon propagator. The calculations are done in a strong background magnetic field and the results are implemented into an open-source Python package. This article focuses on presenting the formalism and computational techniques required for the calculations, while the impact of the results on, e.g., magnetospheric plasma dynamics is discussed in a companion letter (Kiuru et al. 2026).
format Preprint
id arxiv_https___arxiv_org_abs_2603_26545
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Evaluation of QED cross sections in strong magnetic fields
Kiuru, Olavi
High Energy Physics - Phenomenology
High Energy Astrophysical Phenomena
Plasma Physics
Quantum electrodynamics (QED) becomes nonlinear when the magnetic field strength surpasses the critical Schwinger limit $B_Q \approx 4.41\cdot 10^{13}$ G. This limit is surpassed, for example, in the magnetospheres of a specific class of neutron stars known as magnetars, which has important consequences for magnetospheric plasma dynamics due to modifications in scattering cross sections. Using a formalism previously applied to the study of magnetic catalysis, I calculate the cross sections of all tree-level 1-to-2, 2-to-1, and 2-to-2 particle QED scattering processes that do not include a photon propagator. The calculations are done in a strong background magnetic field and the results are implemented into an open-source Python package. This article focuses on presenting the formalism and computational techniques required for the calculations, while the impact of the results on, e.g., magnetospheric plasma dynamics is discussed in a companion letter (Kiuru et al. 2026).
title Evaluation of QED cross sections in strong magnetic fields
topic High Energy Physics - Phenomenology
High Energy Astrophysical Phenomena
Plasma Physics
url https://arxiv.org/abs/2603.26545