Chasing obscuration in type-I AGN: discovery of an eclipsing clumpy wind at the outer broad-line region of NGC 3783

In 2016 we carried out a Swift monitoring program to track the X-ray hardness variability of eight type-I AGN over a year. The purpose of this monitoring was to find intense obscuration events in AGN, and thereby study them by triggering joint XMM-Newton, NuSTAR, and HST observations. We successfully accomplished this for NGC 3783 in December 2016. We found heavy X-ray absorption produced by an obscuring outflow in this AGN. As a result of this obscuration, interesting absorption features appear in the UV and X-ray spectra, which are not present in the previous epochs. Namely, the obscuration produces broad and blue-shifted UV absorption lines of Ly$\alpha$, C IV, and N V, together with a new high-ionisation component producing Fe XXV and Fe XXVI absorption lines. In soft X-rays, only narrow emission lines stand out above the diminished continuum as they are not absorbed by the obscurer. Our analysis shows that the obscurer partially covers the central source with a column density of few $10^{23}$ cm$^{-2}$, outflowing with a velocity of few thousand km s$^{-1}$. The obscuration in NGC 3783 is variable and lasts for about a month. Unlike the commonly-seen warm-absorber winds at pc-scale distances from the black hole, the eclipsing wind in NGC 3783 is located at about 10 light days. Our results suggest the obscuration is produced by an inhomogeneous and clumpy medium, consistent with clouds in the base of a radiatively-driven disk wind at the outer broad-line region of the AGN.

[1]  A. Fabian,et al.  Revealing the ultrafast outflow in IRAS 13224-3809 through spectral variability , 2017, 1704.05545.

[2]  Javier A. García,et al.  A Suzaku, NuSTAR, and XMM-Newton view on variable absorption and relativistic reflection in NGC 4151 , 2017, 1703.10856.

[3]  J. Kaastra,et al.  Systematic comparison of photoionised plasma codes with application to spectroscopic studies of AGN in X-rays , 2016, 1610.03080.

[4]  A. Gonçalves,et al.  The thermal instability of the warm absorber in NGC 3783 , 2016, 1603.01448.

[5]  F. Tombesi,et al.  Short term X-ray spectral variability of the quasar PDS 456 observed in a low flux state , 2016, 1602.04023.

[6]  S. Paltani,et al.  Anatomy of the AGN in NGC 5548: VII. Swift study of obscuration and broadband continuum variability , 2016, 1602.03017.

[7]  J. Kaastra,et al.  Optimal binning of X-ray spectra and response matrix design , 2016, 1601.05309.

[8]  Esac,et al.  Discovery of a fast, broad, transient outflow in NGC 985 , 2015, 1511.07169.

[9]  D. Walton,et al.  THE MULTI-LAYER VARIABLE ABSORBERS IN NGC 1365 REVEALED BY XMM-NEWTON AND NuSTAR , 2015, 1503.03109.

[10]  D. Walton,et al.  Black hole feedback in the luminous quasar PDS 456 , 2015, Science.

[11]  S. Paltani,et al.  Anatomy of the AGN in NGC 5548 - I. A global model for the broadband spectral energy distribution , 2015, 1501.01188.

[12]  W. Brandt,et al.  LONG-TERM X-RAY STABILITY AND ULTRAVIOLET VARIABILITY OF THE IONIZED ABSORPTION IN NGC 3783 , 2014, 1410.4569.

[13]  S. Paltani,et al.  A fast and long-lived outflow from the supermassive black hole in NGC 5548 , 2014, Science.

[14]  A. Markowitz,et al.  First X-ray-based statistical tests for clumpy-torus models: eclipse events from 230 years of monitoring of Seyfert AGN , 2014, 1402.2779.

[15]  J. Stone,et al.  THE EFFECTS OF IRRADIATION ON CLOUD EVOLUTION IN ACTIVE GALACTIC NUCLEI , 2013, 1311.1540.

[16]  Bradley M. Peterson,et al.  THE LOW-LUMINOSITY END OF THE RADIUS–LUMINOSITY RELATIONSHIP FOR ACTIVE GALACTIC NUCLEI , 2013, 1303.1742.

[17]  D. Grupe,et al.  THE RISE OF AN IONIZED WIND IN THE NARROW-LINE SEYFERT 1 GALAXY Mrk 335 OBSERVED BY XMM-NEWTON AND HST , 2013, 1301.5463.

[18]  Andrew C. Fabian,et al.  Observational Evidence of Active Galactic Nuclei Feedback , 2012 .

[19]  S. Paltani,et al.  Multiwavelength campaign on Mrk 509 VIII. Location of the X-ray absorber , 2012, 1201.1855.

[20]  John E. Davis,et al.  TGCat : THE CHANDRA TRANSMISSION GRATING DATA CATALOG AND ARCHIVE , 2011 .

[21]  Douglas P. Finkbeiner,et al.  MEASURING REDDENING WITH SLOAN DIGITAL SKY SURVEY STELLAR SPECTRA AND RECALIBRATING SFD , 2010, 1012.4804.

[22]  R. Maiolino,et al.  X-ray absorption by broad-line region clouds in Mrk 766 , 2010, 1008.5067.

[23]  P. T. O'Brien,et al.  A COMPTON-THICK WIND IN THE HIGH-LUMINOSITY QUASAR, PDS 456 , 2009, 0906.0312.

[24]  G. Weigelt,et al.  Probing the dusty environment of the Seyfert 1 nucleus in NGC 3783 with MIDI/VLTI interferometry , 2008, 0806.0531.

[25]  S. Kaspi,et al.  Absorption Measure Distribution of the Outflow in IRAS 13349+2438: Direct Observation of Thermal Instability? , 2007, astro-ph/0703351.

[26]  M. Salvati,et al.  Occultation Measurement of the Size of the X-Ray-emitting Region in the Active Galactic Nucleus of NGC 1365 , 2007, astro-ph/0703173.

[27]  A. Markowitz,et al.  Chandra High-Resolution X-Ray Spectroscopy of the Fe K Line in the Seyfert 1 Galaxy NGC 3783 , 2005, astro-ph/0503570.

[28]  M. Page,et al.  The nature and origin of Seyfert warm absorbers , 2004, astro-ph/0411297.

[29]  B. M. Peterson,et al.  Central Masses and Broad-Line Region Sizes of Active Galactic Nuclei. II. A Homogeneous Analysis of a Large Reverberation-Mapping Database , 2004, astro-ph/0407299.

[30]  M. Sako,et al.  A Long Look at NGC 3783 with the XMM-Newton Reflection Grating Spectrometer , 2003, astro-ph/0307467.

[31]  C. Mendoza,et al.  Modeling of Iron K Lines: Radiative and Auger Decay Data for Fe II-Fe IX , 2003, astro-ph/0306321.

[32]  Shai Kaspi,et al.  The Ionized Gas and Nuclear Environment in NGC 3783. II. Averaged Hubble Space Telescope/STIS and Far Ultraviolet Spectroscopic Explorer Spectra , 2003, astro-ph/0506323.

[33]  Columbia,et al.  Multi-wavelength study of the Seyfert 1 galaxy NGC 3783 with XMM-Newton , 2002, astro-ph/0206316.

[34]  B. Peterson,et al.  Determining Central Black Hole Masses in Distant Active Galaxies and Quasars. II. Improved Optical and UV Scaling Relationships , 2002, astro-ph/0601303.

[35]  Milano,et al.  The BeppoSAX broad-band spectrum and variability of the Seyfert 1 NGC 3783 , 2002, astro-ph/0203344.

[36]  W. Brandt,et al.  The Ionized Gas and Nuclear Environment in NGC 3783. I. Time-averaged 900 Kilosecond Chandra Grating Spectroscopy , 2002, astro-ph/0203263.

[37]  D. Merritt,et al.  A Fundamental Relation between Supermassive Black Holes and Their Host Galaxies , 2000, astro-ph/0006053.

[38]  Boulder,et al.  Dynamics of Line-driven Disk Winds in Active Galactic Nuclei. II. Effects of Disk Radiation , 2000, astro-ph/0005315.

[39]  Stephen P. Maran,et al.  Intrinsic Absorption Lines in Seyfert 1 Galaxies. I. Ultraviolet Spectra from the Hubble Space Telescope , 1998, astro-ph/9812265.

[40]  G. Paturel,et al.  Kinematics of the local universe - VII. New 21-cm line measurements of 2112 galaxies , 1998 .

[41]  Edward M. Murphy,et al.  Galactic H i Column Densities toward Quasars and Active Galactic Nuclei , 1996 .

[42]  A. Kinney,et al.  Template ultraviolet to near-infrared spectra of star-forming galaxies and their application to K-corrections , 1996 .

[43]  J. Baldwin,et al.  Locally Optimally Emitting Clouds and the Origin of Quasar Emission Lines , 1995, astro-ph/9510080.

[44]  J. Chiang,et al.  Accretion Disk Winds from Active Galactic Nuclei , 1995 .

[45]  J. Krolik,et al.  Two-phase models of quasar emission line regions , 1981 .