The Polarization Behavior of Relativistic Synchrotron Self-Compton Jets
Abstract
We describe a geometric model for synchrotron and synchrotron self-Compton (SSC) radiation from blazar jets, involving multiple emission zones with turbulent magnetic fields and fully self-consistent seed photon mixing for SSC. Including the effects of jet divergence, particle cooling, and the relativistic PA rotation to the observer frame, we find that the multizone model recovers simple predictions for SSC polarization, but describes new dependencies on jet viewing geometry and zone multiplicity. Increasing the zone number decreases both synchrotron and SSC polarization, but with different scaling. A rise in synchrotron polarization fraction ΠSync at high energies is guaranteed by basic relativity considerations, and strengthened by jet nonuniformity. Finite light travel time effects can suppress the synchrotron polarization at energies well below the ν Sync peak. In general ΠSync and ΠSSC are correlated with ΠSSC/ΠSync ≈ 0.3, but individual realizations can lie far from this trend. This study lets us estimate Π across the SED, leading to predictions in the X-ray band helpful for planning observations with IXPE and other upcoming X-ray polarization missions.
- Publication:
-
The Astrophysical Journal
- Pub Date:
- November 2019
- DOI:
- 10.3847/1538-4357/ab46b1
- arXiv:
- arXiv:1909.10563
- Bibcode:
- 2019ApJ...885...76P
- Keywords:
-
- Active galactic nuclei;
- Blazars;
- Polarimetry;
- Relativistic Jets;
- 16;
- 164;
- 1278;
- 1390;
- Astrophysics - High Energy Astrophysical Phenomena
- E-Print:
- Accepted for publication in the Astrophysical Journal