Synchrotron-Self-Compton radiation from magnetically-dominated turbulent plasmas in relativistic jets
Emanuele Sobacchi, Lorenzo Sironi, Andrei M. Beloborodov

TL;DR
This paper investigates synchrotron-self-Compton radiation from anisotropic particles in magnetically-dominated turbulent relativistic jets, revealing spectral behaviors in different regimes and implications for modeling BL Lacs and GRBs.
Contribution
It provides a first-principles analysis of particle anisotropy effects on radiation spectra in turbulent jets, highlighting the role of Klein-Nishina effects and pitch angle distributions.
Findings
Synchrotron and IC spectra are soft in the Thomson regime.
Hard spectra with $ u F_ u o u$ occur in Klein-Nishina regime.
Spectral properties are consistent with observations of BL Lacs and GRBs.
Abstract
Relativistic jets launched by rotating black holes are powerful emitters of non-thermal radiation. Extraction of the rotational energy via electromagnetic stresses produces magnetically-dominated jets, which may become turbulent. Studies of magnetically-dominated plasma turbulence from first principles show that most of the accelerated particles have small pitch angles, i.e. the particle velocity is nearly aligned with the local magnetic field. We examine synchrotron-self-Compton radiation from anisotropic particles in the fast cooling regime. The small pitch angles reduce the synchrotron cooling rate and promote the role of inverse Compton (IC) cooling, which can occur in two different regimes. In the Thomson regime, both synchrotron and IC components have soft spectra, . In the Klein-Nishina regime, synchrotron radiation has a hard spectrum, typically $\nu…
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