Particle acceleration and synchrotron emission in blazar jets
J. G. Kirk, F. M. Rieger, A. Mastichiadis

TL;DR
This paper models electron acceleration and synchrotron emission in blazar jets, showing how spectral variability relates to acceleration and cooling processes, and compares model predictions with observations of specific blazars.
Contribution
It presents a detailed, time-dependent model of electron acceleration and synchrotron emission in blazar jets, incorporating space, time, and momentum dependencies.
Findings
Spectral hardening during flux rise in rapidly accelerated bands.
Spectral softening during flux decline in rapidly accelerated bands.
Reversal of spectral behavior in bands with comparable acceleration and cooling timescales.
Abstract
We model the acceleration of electrons at a shock front in a relativistic blazar jet and compute the radiation they emit in a post-shock region which contains a homogeneous magnetic field. The full space, time and momentum dependence of the electron distribution is used in this calculation. It is shown that the "homogeneous" synchrotron model is recovered, provided the downstream speed of the plasma away from the shock front is nonrelativistic, and provided that the light travel times across the face of the shock front is unimportant. By varying the rate at which particles are picked up by the acceleration process, we calculate the time-dependence of the spectra. Since the magnetic field strength is assumed constant within the emission region, each frequency band can be identified with electrons of a particular energy. We find that for a band in which the electrons are accelerated…
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Taxonomy
TopicsAstrophysics and Cosmic Phenomena · Particle Accelerators and Free-Electron Lasers · Gyrotron and Vacuum Electronics Research
