paper

A high-density relativistic reflection origin for the soft and hard X-ray excess emission from Mrk 1044

arXiv:1804.02703 · doi:10.1093/mnras/sty1487

Abstract

We present the first results from a detailed spectral-timing analysis of a long (130 ks) XMM-Newton observation and quasi-simultaneous NuSTAR and Swift observations of the highly-accreting narrow-line Seyfert 1 galaxy Mrk 1044. The broadband (0.350 keV) spectrum reveals the presence of a strong soft X-ray excess emission below 1.5 keV, iron K emission complex at 67 keV and a `Compton hump' at 1530 keV. We find that the relativistic reflection from a high-density accretion disc with a broken power-law emissivity profile can simultaneously explain the soft X-ray excess, highly ionized broad iron line and the Compton hump. At low frequencies ( Hz), the power-law continuum dominated 1.55 keV band lags behind the reflection dominated 0.31 keV band, which is explained with a combination of propagation fluctuation and Comptonization processes, while at higher frequencies ( Hz), we detect a soft lag which is interpreted as a signature of X-ray reverberation from the accretion disc. The fractional root-mean-squared (rms) variability of the source decreases with energy and is well described by two variable components: a less variable relativistic disc reflection and a more variable direct coronal emission. Our combined spectral-timing analyses suggest that the observed broadband X-ray variability of Mrk~1044 is mainly driven by variations in the location or geometry of the optically thin, hot corona.

23 pages, 19 figures, 4 tables, Published in MNRAS