A hadronic origin for ultra-high-frequency-peaked BL Lac objects
Abstract
Current Cherenkov telescopes have identified a population of ultra-high-frequency peaked BL Lac objects (UHBLs), also known as extreme blazars, that exhibit exceptionally hard TeV spectra, including 1ES 0229+200, 1ES 0347-121, RGB J0710+591, 1ES 1101-232, and 1ES 1218+304. Although one-zone synchrotron-self-Compton (SSC) models have been generally successful in interpreting the high-energy emission observed in other BL Lac objects, they are problematic for UHBLs, necessitating very large Doppler factors and/or extremely high minimum Lorentz factors of the emitting leptonic population. In this context, we have investigated alternative scenarios where hadronic emission processes are important, using a newly developed (lepto-)hadronic numerical code to systematically explore the physical parameters of the emission region that reproduces the observed spectra while avoiding the extreme values encountered in pure SSC models. Assuming a fixed Doppler factor , two principal parameter regimes are identified, where the high-energy emission is due to: 1) proton-synchrotron radiation, with magnetic fields and maximum proton energies eV; and 2) synchrotron emission from p--induced cascades as well as SSC emission from primary leptons, with and eV. This can be realized with plausible, sub-Eddington values for the total (kinetic plus magnetic) power of the emitting plasma, in contrast to hadronic interpretations for other blazar classes that often warrant highly super-Eddington values.
Cite
@article{arxiv.1411.5968,
title = {A hadronic origin for ultra-high-frequency-peaked BL Lac objects},
author = {M. Cerruti and A. Zech and C. Boisson and S. Inoue},
journal= {arXiv preprint arXiv:1411.5968},
year = {2015}
}
Comments
19 pages, 6 figures; new version to match the published one