Self-modulation of Fast Radio Bursts
Abstract
Fast Radio Bursts (FRBs) are extreme astrophysical phenomena entering the realm of non-linear optics, a field developed in laser physics. A classical non-linear effect is self-modulation. We examine the propagation of FRBs through the circumburst environment using the idealised setup of a monochromatic linearly-polarised GHz wave propagating through a uniform plasma slab of density at distance from the source. We find that self-modulation occurs if the slab is located within a critical radius , where is the isotropic equivalent of the FRB luminosity. Self-modulation breaks the burst into pancakes transverse to the radial direction. When , the transverse size of the pancakes is smaller than the Fresnel scale. The pancakes are strongly diffracted as the burst exits the slab, and interference between the pancakes produces a frequency modulation of the observed intensity with a sub-GHz bandwidth. When , the transverse size of the pancakes becomes comparable with the Fresnel scale, and the effect of diffraction is weaker. The observed intensity is modulated on a timescale of ten microseconds, which corresponds to the radial width of the pancakes. Our results suggest that self-modulation may cause the temporal and frequency structure observed in FRBs.
Cite
@article{arxiv.2010.08282,
title = {Self-modulation of Fast Radio Bursts},
author = {Emanuele Sobacchi and Yuri Lyubarsky and Andrei M. Beloborodov and Lorenzo Sironi},
journal= {arXiv preprint arXiv:2010.08282},
year = {2020}
}
Comments
accepted for publication in MNRAS