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arXiv · astro-ph/0503618

Submillimetre photometry of X-ray absorbed QSOs: their formation and evolutionary status

Abstract

We present an analysis of the submillimetre/X-ray properties of 19 X-ray absorbed, Compton-thin quasi-stellar objects (QSOs) selected to have luminosities and redshifts which represent the peak of cosmic QSO activity. i.e. ~L* objects at 1 1.5, the high star formation rates are consistent with a scenario in which the QSOs evolve to become local luminous elliptical galaxies. Combining these results with previously published data for X-ray unabsorbed QSOs and submillimetre-selected galaxies we propose the following evolutionary sequence: the forming galaxy is initially far-infrared luminous but X-ray weak similar to the sources discovered by the Submillimetre Common-User Bolometer Array; as the black hole and spheroid grow with time a point is reached when the central QSO becomes powerful enough to terminate the star formation and eject the bulk of the fuel supply (the Compton-thin absorbed QSO phase); this transition is followed by a period of unobscured QSO activity which subsequently declines to leave a quiescent spheroidal galaxy.

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J. A. Stevens, M. J. Page, R. J. Ivison, F. J. Carrera, J. P. D. Mittaz, Ian Smail, I. M. McHardy. 2005-03-29. Submillimetre photometry of X-ray absorbed QSOs: their formation and evolutionary status. https://doi.org/10.1111/j.1365-2966.2005.09051.x

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