A close-pair binary in a distant triple supermassive black hole system

[1]  Sang-Sung Lee,et al.  Relativistic Jets as Compact Radio Sources , 2014 .

[2]  S. Mathur,et al.  The NGC 3341 minor merger: a panchromatic view of the active galactic nucleus in a dwarf companion , 2013, 1309.0093.

[3]  D. J. Saikia,et al.  A 325-MHz GMRT survey of the Herschel-ATLAS/GAMA fields , 2013, 1307.4590.

[4]  M. Fumagalli,et al.  Caught in the act: discovery of a physical quasar triplet , 2013, 1302.0849.

[5]  A. Sesana Systematic investigation of the expected gravitational wave signal from supermassive black hole binaries in the pulsar timing band , 2012, 1211.5375.

[6]  T. An,et al.  THE DYNAMIC EVOLUTION OF YOUNG EXTRAGALACTIC RADIO SOURCES , 2012, 1211.1760.

[7]  Bryan J. Butler,et al.  AN ACCURATE FLUX DENSITY SCALE FROM 1 TO 50 GHz , 2012, 1211.1300.

[8]  Richard Mushotzky,et al.  UNDERSTANDING DUAL ACTIVE GALACTIC NUCLEUS ACTIVATION IN THE NEARBY UNIVERSE , 2012, 1201.2944.

[9]  K. Schawinski,et al.  EVIDENCE FOR THREE ACCRETING BLACK HOLES IN A GALAXY AT z ∼ 1.35: A SNAPSHOT OF RECENTLY FORMED BLACK HOLE SEEDS? , 2011, 1111.6973.

[10]  L. Mayer,et al.  OBSERVABILITY OF DUAL ACTIVE GALACTIC NUCLEI IN MERGING GALAXIES , 2011, 1111.0223.

[11]  Noriyuki Kawaguchi,et al.  An origin of the radio jet in M87 at the location of the central black hole , 2011, Nature.

[12]  M. Elvis,et al.  A close nuclear black-hole pair in the spiral galaxy NGC 3393 , 2011, Nature.

[13]  S. Djorgovski,et al.  A KILOPARSEC-SCALE BINARY ACTIVE GALACTIC NUCLEUS CONFIRMED BY THE EXPANDED VERY LARGE ARRAY , 2011, 1109.0008.

[14]  A. Loeb,et al.  Formation of galactic nuclei with multiple supermassive black holes at high redshifts , 2011, 1107.0517.

[15]  Yue Shen,et al.  COSMIC TRAIN WRECK BY MASSIVE BLACK HOLES: DISCOVERY OF A KILOPARSEC-SCALE TRIPLE ACTIVE GALACTIC NUCLEUS , 2011, 1104.3391.

[16]  O. Smirnov,et al.  The MeqTrees software system and its use for third-generation calibration of radio interferometers , 2010, 1101.1745.

[17]  L. Hernquist,et al.  Recoiling Black Holes in Merging Galaxies , 2010, 1103.3701.

[18]  Adam D. Myers,et al.  MERGERS IN DOUBLE-PEAKED [O iii] ACTIVE GALACTIC NUCLEI , 2010, 1009.0767.

[19]  S. Burke-Spolaor A radio Census of binary supermassive black holes , 2010, 1008.4382.

[20]  D. Rosario,et al.  A SEARCH FOR BINARY ACTIVE GALACTIC NUCLEI: DOUBLE-PEAKED [O iii] AGNs IN THE SLOAN DIGITAL SKY SURVEY , 2009, 0908.1998.

[21]  T. Boroson,et al.  A candidate sub-parsec supermassive binary black hole system , 2009, Nature.

[22]  L. Ho,et al.  An Offset Seyfert 2 Nucleus in the Minor Merger System NGC 3341 , 2008, 0807.3314.

[23]  L. Miller,et al.  A semi-empirical simulation of the extragalactic radio continuum sky for next generation radio telescopes , 2008, 0805.3413.

[24]  M. Kidger,et al.  A massive binary black-hole system in OJ 287 and a test of general relativity , 2008, Nature.

[25]  S. Djorgovski,et al.  Discovery of a Probable Physical Triple Quasar , 2007, astro-ph/0701155.

[26]  A. Loeb,et al.  Dynamics of triple black hole systems in hierarchically merging massive galaxies , 2006, astro-ph/0612517.

[27]  Ž. Ivezić,et al.  The Radio-Loud Fraction of Quasars is a Strong Function of Redshift and Optical Luminosity , 2006, astro-ph/0611453.

[28]  National Radio Astronomy Observatory,et al.  A Compact Supermassive Binary Black Hole System , 2006, astro-ph/0604042.

[29]  J. Peacock,et al.  Simulations of the formation, evolution and clustering of galaxies and quasars , 2005, Nature.

[30]  Hans-Walter Rix,et al.  On the Black Hole Mass-Bulge Mass Relation , 2004, astro-ph/0402376.

[31]  S. Komossa,et al.  Discovery of a Binary Active Galactic Nucleus in the Ultraluminous Infrared Galaxy NGC 6240 Using Chandra , 2002, astro-ph/0212099.

[32]  A. Loeb,et al.  Low-Frequency Gravitational Waves from Massive Black Hole Binaries: Predictions for LISA and Pulsar Timing Arrays , 2002, astro-ph/0211556.

[33]  A. M. Stirling,et al.  THE INNER RADIO JET REGION AND THE COMPLEX ENVIRONMENT OF SS433 , 1999, astro-ph/9907169.

[34]  C. O’Dea The Compact Steep‐Spectrum and Gigahertz Peaked‐Spectrum Radio Sources , 1998 .

[35]  A. Lobanov Ultracompact jets in active galactic nuclei , 1998 .

[36]  Richard L. White,et al.  The FIRST Survey: Faint Images of the Radio Sky at twenty centimeters , 1995 .

[37]  F. Owen,et al.  Faraday rotation in cooling flow clusters of galaxies. 2: Survey , 1994 .

[38]  J. Tonry Constraints on the orbits of multiple nuclei in brightest cluster galaxies. , 1984 .

[39]  K. Johnston,et al.  An analysis of the proper motions of SS 433 radio jets , 1981 .

[40]  M. Rees,et al.  Massive black hole binaries in active galactic nuclei , 1980, Nature.

[41]  ApJ, in press Preprint typeset using L ATEX style emulateapj v. 04/03/99 THE ASSEMBLY AND MERGING HISTORY OF SUPERMASSIVE BLACK HOLES IN HIERARCHICAL MODELS OF GALAXY FORMATION , 2002 .

[42]  John Kormendy,et al.  Inward Bound—The Search for Supermassive Black Holes in Galactic Nuclei , 1995 .

[43]  J. Kaastra,et al.  Massive binary black holes and wiggling jets , 1992 .

[44]  K. Grainge,et al.  Cosmology, Galaxy Formation and Astroparticle Physics on the Pathway to the Ska the Arcminute Microkelvin Imager 1. Motivation for a Galaxy Cluster Survey 2. the Sunyaev-zel'dovich Effect , 2022 .

[45]  Carlos E. C. J. Gabriel,et al.  Astronomical Data Analysis Software and Systems Xv , 2022 .