WISDOM Project – II. Molecular gas measurement of the supermassive black hole mass in NGC 4697

As part of the mm-Wave Interferometric Survey of Dark Object Masses (WISDOM) project, we present an estimate of the mass of the supermassive black hole (SMBH) in the nearby fast-rotating early-type galaxy NGC 4697. This estimate is based on Atacama Large Millimeter/submillimeter Array (ALMA) cycle-3...

Full description

Bibliographic Details
Main Authors: Davis, T, Bureau, M, Onishi, K, Cappellari, M, Iguchi, S, Sarzi, M
Format: Journal article
Published: Oxford University Press 2017
_version_ 1797062242530754560
author Davis, T
Bureau, M
Onishi, K
Cappellari, M
Iguchi, S
Sarzi, M
author_facet Davis, T
Bureau, M
Onishi, K
Cappellari, M
Iguchi, S
Sarzi, M
author_sort Davis, T
collection OXFORD
description As part of the mm-Wave Interferometric Survey of Dark Object Masses (WISDOM) project, we present an estimate of the mass of the supermassive black hole (SMBH) in the nearby fast-rotating early-type galaxy NGC 4697. This estimate is based on Atacama Large Millimeter/submillimeter Array (ALMA) cycle-3 observations of the 12CO(2–1) emission line with a linear resolution of 29 pc (0.53 arcsec). We find that NGC 4697 hosts a small relaxed central molecular gas disc with a mass of 1.6 × 107 M⊙, co-spatial with the obscuring dust disc visible in optical Hubble Space Telescope imaging. We also resolve thermal 1 mm continuum emission from the dust in this disc. NGC 4697 is found to have a very low molecular gas velocity dispersion, σgas = 1.65+0.68−0.65 km s^−1. This seems to be partially because the giant molecular cloud mass function is not fully sampled, but other mechanisms such as chemical differentiation in a hard radiation field or morphological quenching also seem to be required. We detect a Keplerian increase of the rotation of the molecular gas in the very centre of NGC 4697, and use forward modelling of the ALMA data cube in a Bayesian framework with the KINematic Molecular Simulation (KINMS) code to estimate an SMBH mass of (1.3+0.18−0.17) × 108 M⊙ and an i-band mass-to-light ratio of 2.14+0.04−0.05M⊙/L⊙ (at the 99 per cent confidence level). Our estimate of the SMBH mass is entirely consistent with previous measurements from stellar kinematics. This increases confidence in the growing number of SMBH mass estimates being obtained in the ALMA era.
first_indexed 2024-03-06T20:42:43Z
format Journal article
id oxford-uuid:34ca7b28-032e-499a-84e8-abf6c7f0c5d1
institution University of Oxford
last_indexed 2024-03-06T20:42:43Z
publishDate 2017
publisher Oxford University Press
record_format dspace
spelling oxford-uuid:34ca7b28-032e-499a-84e8-abf6c7f0c5d12022-03-26T13:28:21ZWISDOM Project – II. Molecular gas measurement of the supermassive black hole mass in NGC 4697Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:34ca7b28-032e-499a-84e8-abf6c7f0c5d1Symplectic Elements at OxfordOxford University Press2017Davis, TBureau, MOnishi, KCappellari, MIguchi, SSarzi, MAs part of the mm-Wave Interferometric Survey of Dark Object Masses (WISDOM) project, we present an estimate of the mass of the supermassive black hole (SMBH) in the nearby fast-rotating early-type galaxy NGC 4697. This estimate is based on Atacama Large Millimeter/submillimeter Array (ALMA) cycle-3 observations of the 12CO(2–1) emission line with a linear resolution of 29 pc (0.53 arcsec). We find that NGC 4697 hosts a small relaxed central molecular gas disc with a mass of 1.6 × 107 M⊙, co-spatial with the obscuring dust disc visible in optical Hubble Space Telescope imaging. We also resolve thermal 1 mm continuum emission from the dust in this disc. NGC 4697 is found to have a very low molecular gas velocity dispersion, σgas = 1.65+0.68−0.65 km s^−1. This seems to be partially because the giant molecular cloud mass function is not fully sampled, but other mechanisms such as chemical differentiation in a hard radiation field or morphological quenching also seem to be required. We detect a Keplerian increase of the rotation of the molecular gas in the very centre of NGC 4697, and use forward modelling of the ALMA data cube in a Bayesian framework with the KINematic Molecular Simulation (KINMS) code to estimate an SMBH mass of (1.3+0.18−0.17) × 108 M⊙ and an i-band mass-to-light ratio of 2.14+0.04−0.05M⊙/L⊙ (at the 99 per cent confidence level). Our estimate of the SMBH mass is entirely consistent with previous measurements from stellar kinematics. This increases confidence in the growing number of SMBH mass estimates being obtained in the ALMA era.
spellingShingle Davis, T
Bureau, M
Onishi, K
Cappellari, M
Iguchi, S
Sarzi, M
WISDOM Project – II. Molecular gas measurement of the supermassive black hole mass in NGC 4697
title WISDOM Project – II. Molecular gas measurement of the supermassive black hole mass in NGC 4697
title_full WISDOM Project – II. Molecular gas measurement of the supermassive black hole mass in NGC 4697
title_fullStr WISDOM Project – II. Molecular gas measurement of the supermassive black hole mass in NGC 4697
title_full_unstemmed WISDOM Project – II. Molecular gas measurement of the supermassive black hole mass in NGC 4697
title_short WISDOM Project – II. Molecular gas measurement of the supermassive black hole mass in NGC 4697
title_sort wisdom project ii molecular gas measurement of the supermassive black hole mass in ngc 4697
work_keys_str_mv AT davist wisdomprojectiimoleculargasmeasurementofthesupermassiveblackholemassinngc4697
AT bureaum wisdomprojectiimoleculargasmeasurementofthesupermassiveblackholemassinngc4697
AT onishik wisdomprojectiimoleculargasmeasurementofthesupermassiveblackholemassinngc4697
AT cappellarim wisdomprojectiimoleculargasmeasurementofthesupermassiveblackholemassinngc4697
AT iguchis wisdomprojectiimoleculargasmeasurementofthesupermassiveblackholemassinngc4697
AT sarzim wisdomprojectiimoleculargasmeasurementofthesupermassiveblackholemassinngc4697