WISDOM Project – XIII. Feeding molecular gas to the supermassive black hole in the starburst AGN-host galaxy Fairall 49

Author:

Lelli Federico12ORCID,Davis Timothy A2ORCID,Bureau Martin34,Cappellari Michele3ORCID,Liu Lijie3ORCID,Ruffa Ilaria25ORCID,Smith Mark D3ORCID,Williams Thomas G6ORCID

Affiliation:

1. INAF, Arcetri Astrophysical Observatory , Largo Enrico Fermi 5, I-50125 Florence, Italy

2. School of Physics and Astronomy, Cardiff University , Queens Buildings, The Parade, Cardiff CF24 3AA, UK

3. Sub-department of Astrophysics, Department of Physics, University of Oxford , Keble Road, Oxford OX1 3RH, UK

4. Yonsei Frontier Lab and Department of Astronomy, Yonsei University , 50 Yonsei-ro, Seodaemun-gu, Seoul 03722, Republic of Korea

5. INAF – Istituto di Radioastronomia , via P. Gobetti 101, I-40129 Bologna, Italy

6. Max Planck Institut für Astronomie , Königstuhl 17, D-69117 Heidelberg, Germany

Abstract

ABSTRACT The mm-Wave Interferometric Survey of Dark Object Masses (WISDOM) is probing supermassive black holes (SMBHs) in galaxies across the Hubble sequence via molecular gas dynamics. We present the first WISDOM study of a luminous infrared galaxy with an active galactic nuclei (AGNs): Fairall 49. We use new ALMA observations of the CO(2 − 1) line with a spatial resolution of ∼80 pc together with ancillary HST imaging. We reach the following results: (1) The CO kinematics are well described by a regularly rotating gas disc with a radial inflow motion, suggesting weak feedback on the cold gas from both AGN and starburst activity; (2) The dynamically inferred SMBH mass is 1.6 ± 0.4(rnd) ± 0.8(sys) × 108 M⊙ assuming that we have accurately subtracted the AGN and starburst light contributions, which have a luminosity of ∼109 L⊙; (3) The SMBH mass agrees with the SMBH−stellar mass relation but is ∼50 times higher than previous estimates from X-ray variability; (4) The dynamically inferred molecular gas mass is 30 times smaller than that inferred from adopting the Galactic CO-to-H2 conversion factor (XCO) for thermalized gas, suggesting low values of XCO; (5) the molecular gas inflow rate increases steadily with radius and may be as high as ∼5 M⊙ yr−1. This work highlights the potential of using high-resolution CO data to estimate, in addition to SMBH masses, the XCO factor, and gas inflow rates in nearby galaxies.

Funder

European Research Council

European Union

NSF

NINS

NRC

MOST

NAOJ

AUI

NRAO

NASA

ESA

STScI

Canadian Astronomy Data Centre

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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