Seeds don't sink: even massive black hole 'seeds' cannot migrate to galaxy centres efficiently
Creators
Abstract
Possible formation scenarios of supermassive black holes (BHs) in the early universe include rapid growth from less massive seed BHs via super-Eddington accretion or runaway mergers, yet both of these scenarios would require seed BHs to efficiently sink to and be trapped in the Galactic Centre via dynamical friction. This may not be true for their complicated dynamics in clumpy high-z galaxies. In this work, we study this 'sinking problem' with state-of-the-art high-resolution cosmological simulations, combined with both direct N-body integration of seed BH trajectories and post-processing of randomly generated test particles with a newly developed dynamical friction estimator. We find that seed BHs less massive than 10⁸M⊙ (i.e. all but the already-supermassive seeds) cannot efficiently sink in typical high-z galaxies. We also discuss two possible solutions: dramatically increasing the number of seeds such that one seed can end up trapped in the Galactic Centre by chance, or seed BHs being embedded in dense structures (e.g. star clusters) with effective masses above the mass threshold. We discuss the limitations of both solutions.
Additional Information
© 2021 The Author(s). Published by Oxford University Press on behalf of Royal Astronomical Society. This article is published and distributed under the terms of the Oxford University Press, Standard Journals Publication Model (https://academic.oup.com/journals/pages/open_access/funder_policies/chorus/standard_publication_model). Accepted 2021 September 16. Received 2021 August 25; in original form 2021 January 7. Published: 22 September 2021. We thank Zuyi Chen and Alessandro Lupi for their useful discussions. Support for LM and PFH was provided by NSF Research Grants 1911233 & 20009234, NSF CAREER grant 1455342, NASA grants 80NSSC18K0562, HST-AR-15800.001-A. DAA acknowledges support by NSF grant AST-2009687 and by the Flatiron Institute, which is supported by the Simons Foundation. CAFG was supported by NSF through grants AST-1715216 and CAREER award AST-1652522; by NASA through grant 17-ATP17-0067; and by a Cottrell Scholar Award and a Scialog Award from the Research Corporation for Science Advancement. Numerical calculations were run on the Caltech compute cluster 'Wheeler,' allocations FTA-Hopkins supported by the NSF and TACC, and NASA HEC SMD-16-7592. Data Availability: The data and source code supporting the plots within this paper are available on reasonable request to the corresponding author.Attached Files
Published - stab2713.pdf
Submitted - 2101.02727.pdf
Files
2101.02727.pdf
Additional details
Identifiers
- Eprint ID
- 108359
- Resolver ID
- CaltechAUTHORS:20210309-082003361
Related works
- Describes
- https://arxiv.org/abs/2101.02727 (URL)
Funding
- NSF
- AST-1911233
- NSF
- 20009234
- NSF
- AST-1455342
- NASA
- 80NSSC18K0562
- NASA
- HST-AR-15800.001-A
- NSF
- AST-2009687
- Flatiron Institute
- Simons Foundation
- NSF
- AST-1715216
- NSF
- AST-1652522
- NASA
- 17-ATP17-0067
- Cottrell Scholar of Research Corporation
- NASA
- SMD-16-7592
Dates
- Created
-
2021-03-10Created from EPrint's datestamp field
- Updated
-
2021-12-03Created from EPrint's last_modified field
Caltech Custom Metadata
- Caltech groups
- Astronomy Department , TAPIR