The Fourier formalism for relativistic axion-photon conversion, with astrophysical applications
M.C. David Marsh, James H. Matthews, Christopher Reynolds, and, Pierluca Carenza

TL;DR
This paper develops a Fourier-based formalism to analyze relativistic axion-photon conversion in astrophysical plasmas, providing analytical solutions, numerical methods, and implications for magnetic field modeling and axion searches.
Contribution
It introduces a novel Fourier formalism linking magnetic field properties to axion-photon conversion probability, and demonstrates its application to astrophysical scenarios and observational constraints.
Findings
Conversion probability relates to magnetic field power spectrum.
Naive resonance approximations can be highly inaccurate.
Fast Fourier Transform techniques enable efficient calculations.
Abstract
We study the weak mixing of photons and relativistic axion-like particles (axions) in plasmas with background magnetic fields, . We show that, to leading order in the axion-photon coupling, the conversion probability, , is given by the one-dimensional power spectrum of the magnetic field components perpendicular to the particle trajectory. Equivalently, we express as the Fourier transform of the magnetic field autocorrelation function, and establish a dictionary between properties of the real-space magnetic field and the energy-dependent conversion probability. For axions more massive than the plasma frequency, (), we use this formalism to analytically solve the problem of perturbative axion-photon mixing in a general magnetic field. In the general case where varies arbitrarily along the trajectory,…
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