The need for obscured supermassive black hole growth to explain quasar proximity zones in the epoch of reionization

Author:

Satyavolu Sindhu1ORCID,Kulkarni Girish1ORCID,Keating Laura C23ORCID,Haehnelt Martin G45ORCID

Affiliation:

1. Tata Institute of Fundamental Research , Homi Bhabha Road, Mumbai 400005, India

2. Leibniz Institute for Astrophysics Potsdam , An der Sternwarte 16, D-14482 Potsdam, Germany

3. Institute for Astronomy, University of Edinburgh , Blackford Hill, Edinburgh EH9 3HJ, UK

4. Institute of Astronomy, University of Cambridge , Madingley Road, Cambridge CB3 0HA, UK

5. Kavli Institute of Cosmology, University of Cambridge , Madingley Road, Cambridge CB3 0HA, UK

Abstract

ABSTRACTProximity zones of high-redshift quasars are unique probes of supermassive black hole formation, but simultaneously explaining proximity zone sizes and black hole masses has proved to be challenging. We study the robustness of some of the assumptions that are usually made to infer quasar lifetimes from proximity zone sizes. We show that small proximity zones can be readily explained by quasars that vary in brightness with a short duty cycle of fduty ∼ 0.1 and short bright periods of ton ∼ 104 yr, even for long lifetimes. We further show that reconciling this with black hole mass estimates requires the black hole to continue to grow and accrete during its obscured phase. The consequent obscured fractions of ≳ 0.7 or higher are consistent with low-redshift measurements and models of black hole accretion. Such short duty cycles and long obscured phases are also consistent with observations of large proximity zones, thus providing a simple, unified model for proximity zones of all sizes. The large dynamic range of our simulation, and its calibration to the Lyman-α forest, allows us to investigate the influence of the large-scale topology of reionization and the quasar’s host halo mass on proximity zones. We find that incomplete reionization can impede the growth of proximity zones and make them smaller up to 30 per cent, but the quasar host halo mass only affects proximity zones weakly and indirectly. Our work suggests that high-redshift proximity zones can be an effective tool to study quasar variability and black hole growth.

Funder

Swiss National Supercomputing Centre

CSCS

European Union

Engineering and Physical Sciences Research Council

Science and Technology Facilities Council

ERC

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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