Infrared Time Lags for the Periodic Quasar PG 1302-102
Abstract
The optical light curve of the quasar PG 1302-102 at shows a strong, smooth 5.2 yr periodic signal, detectable over a period of yr. Although the interpretation of this phenomenon is still uncertain, the most plausible mechanisms involve a binary system of two supermassive black holes with a subparsec separation. At this close separation, the nuclear black holes in PG 1302-102 will likely merge within yr due to gravitational wave emission alone. Here we report the rest-frame near-infrared time lags for PG 1302-102. Compiling data from {\it WISE} and {\it Akari}, we confirm that the periodic behavior reported in the optical light curve from Graham et al. (2015) is reproduced at infrared wavelengths, with best-fit observed-frame 3.4 and m time lags of days for a near face-on orientation of the torus, or days for an inclined system with relativistic Doppler boosting in effect. The periodicity in the infrared light curves and the light-travel time of the accretion disk photons to reach the dust glowing regions support that a source within the accretion disk is responsible for the optical variability of PG 1302-102, echoed at the further out dusty regions. The implied distance of this dusty, assumed toroidal region is 1.5 pc for a near face-on geometry, or 1.1 pc for the relativistic Doppler boosted case.
Keywords
Cite
@article{arxiv.1511.01515,
title = {Infrared Time Lags for the Periodic Quasar PG 1302-102},
author = {Hyunsung D. Jun and Daniel Stern and Matthew J. Graham and S. G. Djorgovski and Amy Mainzer and Roc M. Cutri and Andrew J. Drake and Ashish A. Mahabal},
journal= {arXiv preprint arXiv:1511.01515},
year = {2015}
}
Comments
5 pages, accepted to ApJL