Skip to main content
Home
Department Of Physics text logo
  • Research
    • Our research
    • Our research groups
    • Our research in action
    • Research funding support
    • Summer internships for undergraduates
  • Study
    • Undergraduates
    • Postgraduates
  • Engage
    • For young people
    • For teachers
    • For the public
    • For alumni
    • For business
  • Support
Menu
Black Hole

Lensing of space time around a black hole. At Oxford we study black holes observationally and theoretically on all size and time scales - it is some of our core work.

Credit: ALAIN RIAZUELO, IAP/UPMC/CNRS. CLICK HERE TO VIEW MORE IMAGES.

Dr Thomas Williams

Visitor

Research theme

  • Astronomy and astrophysics

Sub department

  • Astrophysics

Research groups

  • Galaxy formation and evolution
thomas.williams@physics.ox.ac.uk
Professional Website
  • About
  • Publications

Revealing the Intermediate Mass Black Hole at the Heart of Dwarf Galaxy NGC404 with Sub-parsec Resolution ALMA Observations

Monthly Notices of the Royal Astronomical Society Oxford University Press 496:4 (2020) 4061-4078

Authors:

Martin Bureau, Michele Cappellari, Lijie Liu, Mark Smith

Abstract:

We estimate the mass of the intermediate-mass black hole at the heart of the dwarf elliptical galaxy NGC 404 using Atacama Large Millimeter/submillimeter Array (ALMA) observations of the molecular interstellar medium at an unprecedented linear resolution of ≈0.5 pc, in combination with existing stellar kinematic information. These ALMA observations reveal a central disc/torus of molecular gas clearly rotating around the black hole. This disc is surrounded by a morphologically and kinematically complex flocculent distribution of molecular clouds, that we resolve in detail. Continuum emission is detected from the central parts of NGC 404, likely arising from the Rayleigh–Jeans tail of emission from dust around the nucleus, and potentially from dusty massive star-forming clumps at discrete locations in the disc. Several dynamical measurements of the black hole mass in this system have been made in the past, but they do not agree. We show here that both the observed molecular gas and stellar kinematics independently require a ≈ 5 × 105 M black hole once we include the contribution of the molecular gas to the potential. Our best estimate comes from the high-resolution molecular gas kinematics, suggesting the black hole mass of this system is 5.5+4.1−3.8×105 M (at the 99% confidence level), in good agreement with our revised stellar kinematic measurement and broadly consistent with extrapolations from the black hole mass – velocity dispersion and black hole mass – bulge mass relations. This highlights the need to accurately determine the mass and distribution of each dynamically important component around intermediate-mass black holes when attempting to estimate their masses.
More details from the publisher
Details from ORA
More details

JINGLE -- IV. Dust, HI gas and metal scaling laws in the local Universe

(2020)

Authors:

I De Looze, I Lamperti, A Saintonge, M Relano, MWL Smith, CJR Clark, CD Wilson, M Decleir, AP Jones, RC Kennicutt, G Accurso, E Brinks, M Bureau, P Cigan, DL Clements, P De Vis, L Fanciullo, Y Gao, WK Gear, LC Ho, HS Hwang, MJ Michalowski, JC Lee, C Li, L Lin, T Liu, M Lomaeva, H-A Pan, M Sargent, T Williams, T Xiao, M Zhu
More details from the publisher
Details from ArXiV

JINGLE – IV. Dust, H I gas, and metal scaling laws in the local universe

Monthly Notices of the Royal Astronomical Society Oxford University Press 496:3 (2020) 3668-3687

Authors:

I De Looze, I Lamperti, A Saintonge, M Relaño, Smith, CJR Clark, CD Wilson, M Decleir, AP Jones, RC Kennicutt, G Accurso, E Brinks, Martin Bureau, P Cigan, DL Clements, P De Vis, L Fanciullo, Y Gao, WK Gear, LC Ho, HS Hwang, MJ Michałowski, JC Lee, C Li, L Lin, T Liu, M Lomaeva, H-A Pan, M Sargent, T Williams, T Xiao, M Zhu

Abstract:

Scaling laws of dust, H I gas, and metal mass with stellar mass, specific star formation rate, and metallicity are crucial to our understanding of the build-up of galaxies through their enrichment with metals and dust. In this work, we analyse how the dust and metal content varies with specific gas mass (MH I/M⋆) across a diverse sample of 423 nearby galaxies. The observed trends are interpreted with a set of Dust and Element evolUtion modelS (DEUS) – including stellar dust production, grain growth, and dust destruction – within a Bayesian framework to enable a rigorous search of the multidimensional parameter space. We find that these scaling laws for galaxies with −1.0 ≲ log MH I/M⋆ ≲ 0 can be reproduced using closed-box models with high fractions (37–89  per cent⁠) of supernova dust surviving a reverse shock, relatively low grain growth efficiencies (ϵ = 30–40), and long dust lifetimes (1–2 Gyr). The models have present-day dust masses with similar contributions from stellar sources (50–80  per cent⁠) and grain growth (20–50  per cent⁠). Over the entire lifetime of these galaxies, the contribution from stardust (>90  per cent⁠) outweighs the fraction of dust grown in the interstellar medium (<10  per cent⁠). Our results provide an alternative for the chemical evolution models that require extremely low supernova dust production efficiencies and short grain growth time-scales to reproduce local scaling laws, and could help solving the conundrum on whether or not grains can grow efficiently in the interstellar medium.
More details from the publisher
Details from ORA
More details

The HASHTAG project I. A Survey of CO(3–2) Emission from the Star Forming Disc of M31

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) (2019)

Authors:

Zongnan Li, Zhiyuan Li, Matthew WL Smith, Christine D Wilson, Yu Gao, Stephen A Eales, Yiping Ao, Martin Bureau, Aeree Chung, Timothy A Davis, Richard de Grijs, David J Eden, Jinhua He, Tom M Hughes, Xuejian Jiang, Francisca Kemper, Isabella Lamperti, Bumhyun Lee, Chien-Hsiu Lee, Michał J Michałowski, Harriet Parsons, Sarah Ragan, Peter Scicluna, Yong Shi, Xindi Tang, Neven Tomičić, Sebastien Viaene, Thomas G Williams, Ming Zhu

Abstract:

Abstract We present a CO(3–2) survey of selected regions in the M31 disc as part of the JCMT large programme, HARP and SCUBA-2 High-Resolution Terahertz Andromeda Galaxy Survey (HASHTAG). The 12 CO(3–2) fields in this survey cover a total area of 60 square arcminutes, spanning a deprojected radial range of 2 – 14 kpc across the M31 disc. Combining these observations with existing IRAM 30m CO(1–0) observations and JCMT CO(3–2) maps of the nuclear region of M31, as well as dust temperature and star formation rate surface density maps, we are able to explore the radial distribution of the CO(3–2)/CO(1–0) integrated intensity ratio (R31) and its relationship with dust temperature and star formation. We find that the value of R31 between 2 – 9 kpc galactocentric radius is 0.14, significantly lower than what is seen in the nuclear ring at  1 kpc (R31 ∼ 0.8), only to rise again to 0.27 for the fields centred on the 10 kpc star forming ring. We also found that R31 is positively correlated with dust temperature, with Spearman’s rank correlation coefficient ρ = 0.55. The correlation between star formation rate surface density and CO(3–2) intensity is much stronger than with CO(1–0), with ρ = 0.54 compared to –0.05, suggesting that the CO(3–2) line traces warmer and denser star forming gas better. We also find that R31 correlates well with star formation rate surface density, with ρ = 0.69.
More details from the publisher
Details from ORA
More details

The HASHTAG project I. A Survey of CO(3-2) Emission from the Star Forming Disc of M31

(2019)

Authors:

Zongnan Li, Zhiyuan Li, Matthew WL Smith, Christine D Wilson, Yu Gao, Stephen A Eales, Yiping Ao, Martin Bureau, Aeree Chung, Timothy A Davis, Richard de Grijs, David J Eden, Jinhua He, Tom M Hughes, Xuejian Jiang, Francisca Kemper, Isabella Lamperti, Bumhyun Lee, Chien-Hsiu Lee, Michal J Michalowski, Harriet Parsons, Sarah Ragan, Peter Scicluna, Yong Shi, Xindi Tang, Neven Tomicic, Sebastien Viaene, Thomas G Williams, Ming Zhu
More details from the publisher
Details from ArXiV

Pagination

  • First page First
  • Previous page Prev
  • …
  • Page 37
  • Page 38
  • Page 39
  • Page 40
  • Page 41
  • Page 42
  • Page 43
  • Current page 44
  • Page 45
  • Next page Next
  • Last page Last

Footer Menu

  • Contact us
  • Giving to the Dept of Physics
  • Work with us
  • Media

User account menu

  • Log in

Follow us

FIND US

Clarendon Laboratory,

Parks Road,

Oxford,

OX1 3PU

CONTACT US

Tel: +44(0)1865272200

University of Oxfrod logo Department Of Physics text logo
IOP Juno Champion logo Athena Swan Silver Award logo

© University of Oxford - Department of Physics

Cookies | Privacy policy | Accessibility statement

Built by: Versantus

  • Home
  • Research
  • Study
  • Engage
  • Our people
  • News & Comment
  • Events
  • Our facilities & services
  • About us
  • Giving to Physics
  • Current students
  • Staff intranet