The Variability Structure Function of the Highest-Luminosity Quasars on Short Timescales
Abstract
The stochastic photometric variability of quasars is known to follow a random-walk phenomenology on emission timescales of months to years. Some high-cadence restframe optical monitoring in the past has hinted at a suppression of variability amplitudes on shorter timescales of a few days or weeks, opening the question of what drives the suppression and how it might scale with quasar properties. Here, we study a few thousand of the highest-luminosity quasars in the sky, mostly in the luminosity range of and redshift range of . We use a dataset from the NASA/ATLAS facility with nightly cadence, weather permitting, which has been used before to quantify strong regularity in longer-term restframe-UV variability. As we focus on a careful treatment of short timescales across the sample, we find that a linear function is sufficient to describe the UV variability structure function. Although the result can not rule out the existence of breaks in some groups completely, a simpler model is usually favoured under this circumstance. In conclusion, the data is consistent with a single-slope random walk across restframe timescales of days.
Keywords
Cite
@article{arxiv.2411.07280,
title = {The Variability Structure Function of the Highest-Luminosity Quasars on Short Timescales},
author = {Ji-Jia Tang and Christian Wolf and John Tonry},
journal= {arXiv preprint arXiv:2411.07280},
year = {2024}
}
Comments
9 pages, 5 figures, Accepted for publication in MNRAS