Pulsar Timing Constraints on the Fermi Massive Black-Hole Binary Blazar Population
Abstract
Blazars are a sub-population of quasars whose jets are nearly aligned with the line-of-sight, which tend to exhibit multi-wavelength variability on a variety of timescales. Quasi-periodic variability on year-like timescales has been detected in a number of bright sources, and has been connected to the orbital motion of a putative massive black hole binary. If this were indeed the case, those blazar binaries would contribute to the nanohertz gravitational-wave stochastic background. We test the binary hypothesis for the blazar population observed by the \textit{Fermi} Gamma-Ray Space Telescope, which consists of BL Lacertae objects and flat-spectrum radio quasars. Using mock populations informed by the luminosity functions for BL Lacertae objects and flat-spectrum radio quasars with redshifts , we calculate the expected gravitational wave background and compare it to recent pulsar timing array upper limits. The two are consistent only if a fraction of blazars hosts a binary with orbital periods years. We therefore conclude that binarity cannot significantly explain year-like quasi-periodicity in blazars.
Keywords
Cite
@article{arxiv.1806.11111,
title = {Pulsar Timing Constraints on the Fermi Massive Black-Hole Binary Blazar Population},
author = {A. Miguel Holgado and Alberto Sesana and Angela Sandrinelli and Stefano Covino and Aldo Treves and Xin Liu and Paul Ricker},
journal= {arXiv preprint arXiv:1806.11111},
year = {2018}
}
Comments
5 pages, 4 figures, accepted by MNRAS Letters