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The Sloan Digital Sky Survey Reverberation Mapping Project: Accretion and Broad Emission Line Physics from a Hypervariable Quasar

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arxiv 1906.10138 v1 pith:7UJISIFP submitted 2019-06-24 astro-ph.GA astro-ph.HE

classification astro-ph.GAastro-ph.HE
keywords opticalaccretionbroaddiskemissionluminosityquasarchanges
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We analyze extensive spectroscopic and photometric data of the hypervariable quasar SDSS J131424+530527 (RMID 017) at z=0.456, an optical "changing look" quasar from the Sloan Digital Sky Survey Reverberation Mapping project that increased in optical luminosity by a factor of 10 between 2014 and 2017. The observed broad emission lines all respond in luminosity and width to the changing optical continuum, as expected for photoionization in a stratified, virialized broad emission line region. The luminosity changes therefore result from intrinsic changes in accretion power rather than variable obscuration. The variability is continuous and apparently stochastic, disfavoring an origin as a discrete event such as a tidal disruption flare or microlensing event. It is coordinated on day timescales with blue leading red, consistent with reprocessing powering the entire optical SED. We show that this process cannot work in a standard thin disk geometry on energetic grounds, and would instead require a large covering factor reprocessor. Disk instability models could potentially also explain the data, provided that the instability sets in near the inner radius of a geometrically thick accretion disk.

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  1. The Sloan Digital Sky Survey Reverberation Mapping Project: Insights on Maximizing Efficiency in Lag Measurements and Black-Hole Masses

    astro-ph.GA 2024-12 conditional novelty 6.0 of 10

    Durbin-Watson autocorrelation and variability signal-to-noise are the best predictors of successful quasar lag measurements, and reducing first-year cadence by 40% preserves roughly 76 to 90 percent of recovered lags.

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