Properties and Possible Physical Origins of $\gamma$-ray Emission in Extreme Synchrotron Blazars
Ji-Shun Lian, Jia-Xuan Li, Ze-Rui Wang, Rui-Qi Huang, Hai-Ming Zhang, Jin Zhang

TL;DR
This study analyzes 16 years of Fermi-LAT data for 25 extreme synchrotron blazars, revealing their spectral stability, modeling their broadband emission with a one-zone SSC model, and exploring jet physical properties.
Contribution
It provides a comprehensive analysis of EHBLs' gamma-ray emission, demonstrating the adequacy of a simple SSC model and comparing jet properties with other gamma-ray blazars.
Findings
Most EHBLs show stable or low variability in GeV flux.
Spectra are well fitted by a hard power-law with photon indices 1.7-1.8.
Jets exhibit low radiation efficiency and low magnetization.
Abstract
Extreme synchrotron blazars, characterized by a first peak in their broadband spectral energy distributions (SEDs) at frequencies exceeding Hz, often exhibit a second peak beyond 1~TeV. These sources serve as ideal laboratories for studying particle acceleration and radiation mechanisms in relativistic jets. In this work, we systematically analyze the 16-year Fermi-LAT observational data for 25 extreme high-synchrotron-peaked BL Lacs (EHBLs). The results indicate that the majority of these sources display stable or low flux levels in the GeV band, with only 6 sources showing significant variability at a confidence level exceeding 5. The time-averaged spectra over the 16-year period for most EHBLs are well described by a hard power-law model, with photon indices predominantly clustered between 1.7 and 1.8. Using Fermi-LAT data in conjunction with multiwavelength…
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Taxonomy
TopicsAstrophysics and Cosmic Phenomena · Particle physics theoretical and experimental studies · Neutrino Physics Research
