English

Polarization effects in cosmic-ray acceleration by cyclotron autoresonance

High Energy Astrophysical Phenomena 2024-02-14 v2

Abstract

Employing a two-parameter model for representing the radiation field, the theory of cosmic-ray acceleration by cyclotron autoresonance is analytically generalized here to include any state of polarization. The equations are derived rigorously and used to investigate the dynamics of the nuclides 1_1H1^1, 2_2He4^4, 26_{26}Fe56^{56}, and 28_{28}Ni62^{62}, in severe astrophysical conditions. Single-particle calculations and many-particle simulations show that these nuclides can reach ZeV energies (1 ZeV=10211 ~ZeV = 10^{21} eV) due to interaction with superintense radiation of wavelengths λ=1 \lambda=1~ and 10 μ10~ \mum, and λ=50\lambda=50 pm, and magnetic fields of strengths at the mega- and gigatesla levels. Examples employing radiation intensities in the range 1032104210^{32}-10^{42} W/m2^2 are discussed.

Keywords

Cite

@article{arxiv.2106.08412,
  title  = {Polarization effects in cosmic-ray acceleration by cyclotron autoresonance},
  author = {Yousef I. Salamin},
  journal= {arXiv preprint arXiv:2106.08412},
  year   = {2024}
}
R2 v1 2026-06-24T03:14:27.802Z