Particle acceleration signatures in the time-dependent one-zone synchrotron self-Compton model of blazar flares
Paloma Thevenet, Andreas Zech, Catherine Boisson, Anton Dmytriiev

TL;DR
This paper investigates how different particle acceleration and loss mechanisms in a one-zone SSC model influence blazar flare light curves, aiming to identify observable signatures that distinguish these physical processes.
Contribution
It systematically analyzes various particle gain and loss mechanisms within the one-zone SSC framework to identify characteristic signatures in blazar flare light curves.
Findings
Different scenarios produce diverse light curve shapes.
Energy-dependent time delays can differentiate acceleration mechanisms.
Characteristic signatures help interpret multiwavelength observations.
Abstract
The study of multiwavelength flux and spectral variations during rapid flares from blazars provides strong constraints on the physical parameters of the compact emission regions responsible for these still poorly understood events. Although a full description of the continuous and transient emission from blazars seems to require more sophisticated scenarios, particle acceleration and loss mechanisms can be approximately described within the simple leptonic one-zone framework, enabling a systematic study of their impact on the observable properties of multiwavelength flare light curves. Our goal is to identify characteristic signatures in these light curve profiles that permit one to discriminate between the main physical processes situated inside the relativistic jet and commonly invoked to explain blazar flares. The present study exclusively focuses on modeling rapid flares from BL Lac…
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Taxonomy
TopicsAstrophysics and Cosmic Phenomena · Quantum and Classical Electrodynamics · Neutrino Physics Research
