Behavior of axion-like particles in smoothed out domain-like magnetic fields
Giorgio Galanti, Marco Roncadelli

TL;DR
This paper investigates how smoothing out the magnetic field transitions in domain-like structures affects photon-ALP oscillations, providing exact solutions crucial for interpreting high-energy gamma-ray observations.
Contribution
It introduces a new model with smoothed magnetic field edges and derives exact analytical solutions for photon-ALP propagation within this framework.
Findings
Exact analytical solution for photon/ALP propagation in smoothed magnetic domains
Demonstrates the impact of domain shape on photon survival probability at TeV energies
Highlights importance for gamma-ray detector data interpretation
Abstract
Basically, in certain circumstances axion-like particles (ALPs) substantially enhance the photon survival probability of a beam emitted by a far-away source through the mechanism of photon-ALP oscillation ( denotes the energy). But in order for this to work, an external magnetic field must be present. In several cases is modeled as a domain-like network with `sharp edges': all domains have the same size (set by the coherence length) and the same strength B, but the direction of changes randomly and abruptly from one domain to the next. It is obviously a highly mathematical idealization wherein the components of are discontinuous across the edges (whence the name sharp edges). It is therefore highly desirable to go a step further, and to find out what happens when the edges are…
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