A model of quasi-periodic spectra from structured bunches can reproduce steep, shallow, narrow, broad, multi-frequency, and statistical fringe spectra of fast radio bursts.
Origin of spectral bands in the Crab pulsar radio emission
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
The model explaining the spectral "zebra" pattern of the high-frequency interpulse (HFIP) of the Crab pulsar radio emission is proposed. The observed emission bands are diffraction fringes in the spectral domain. The pulsar's own plasma-filled magnetosphere plays a role of a frequency-dependent "diffraction screen". The observed features such as the proportional band spacing, high polarization, constant position angle, and others are explained. The model allows one to perform "tomography" of the pulsar magnetosphere. Indeed, we have obtained the plasma density profile directly from observations, without assuming a particular magnetosphere. Our model is testable and several predictions are made. The two "high-frequency components" observed at the same frequencies as the HFIP are proposed to be related to HFIP.
fields
astro-ph.HE 1years
2024 1verdicts
CONDITIONAL 1representative citing papers
citing papers explorer
-
Observed Steep and Shallow Spectra, Narrow and Broadband Spectra, Multi-frequency Simultaneous Spectra, and Statistical Fringe Spectra in Fast Radio Bursts: Various Faces of Intrinsic Quasi-periodic Spectra?
A model of quasi-periodic spectra from structured bunches can reproduce steep, shallow, narrow, broad, multi-frequency, and statistical fringe spectra of fast radio bursts.