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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.

Professor Andrew Bunker

Professor of Astrophysics

Research theme

  • Astronomy and astrophysics

Sub department

  • Astrophysics

Research groups

  • Galaxy formation and evolution
Andy.Bunker@physics.ox.ac.uk
Telephone: 01865 (2)83126
Denys Wilkinson Building, room 702
  • About
  • Publications

Emission-line galaxies at $z\sim1$ from near-IR HST Slitless Spectroscopy: metallicities, star formation rates and redshift confirmations from VLT/FORS2 spectroscopy

(2024)

Authors:

K Boyett, AJ Bunker, J Chevallard, AJ Battisti, AL Henry, S Wilkins, MA Malkan, J Caruana, H Atek, I Baronchelli, J Colbert, YS Dai, Jonathan P Gardner, M Rafelski, C Scarlata, HI Teplitz, X Wang
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JADES: Primaeval Lyman-$\mathrm{\alpha}$ emitting galaxies reveal early sites of reionisation out to redshift $z \sim 9$

(2024)

Authors:

Joris Witstok, Roberto Maiolino, Renske Smit, Gareth C Jones, Andrew J Bunker, Jakob M Helton, Benjamin D Johnson, Sandro Tacchella, Aayush Saxena, Santiago Arribas, Rachana Bhatawdekar, Kristan Boyett, Alex J Cameron, Phillip A Cargile, Stefano Carniani, Stéphane Charlot, Jacopo Chevallard, Mirko Curti, Emma Curtis-Lake, Francesco D'Eugenio, Daniel J Eisenstein, Kevin Hainline, Ryan Hausen, Nimisha Kumari, Isaac Laseter, Michael V Maseda, Marcia Rieke, Brant Robertson, Jan Scholtz, Irene Shivaei, Christina C Williams, Christopher NA Willmer, Chris Willott
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WFC3 Infrared Spectroscopic Parallel (WISP) Survey: Photometric and Emission Line Data Release

(2024)

Authors:

AJ Battisti, MB Bagley, M Rafelski, I Baronchelli, YS Dai, AL Henry, H Atek, J Colbert, MA Malkan, PJ McCarthy, C Scarlata, B Siana, HI Teplitz, A Alavi, K Boyett, AJ Bunker, JP Gardner, NP Hathi, D Masters, V Mehta, M Rutkowski, K Shahinyan, B Sunnquist, X Wang
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GA-NIFS: An extremely nitrogen-loud and chemically stratified galaxy at $z\sim 5.55$

(2024)

Authors:

Xihan Ji, Hannah Übler, Roberto Maiolino, Francesco D'Eugenio, Santiago Arribas, Andrew J Bunker, Stéphane Charlot, Michele Perna, Bruno Rodríguez Del Pino, Torsten Böker, Giovanni Cresci, Mirko Curti, Nimisha Kumari, Isabella Lamperti
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Ionised gas kinematics and dynamical masses of z ≳ 6 galaxies from JADES/NIRSpec high-resolution spectroscopy

Astronomy & Astrophysics EDP Sciences 684 (2024) A87-A87

Authors:

Anna de Graaff, Hans-Walter Rix, Stefano Carniani, Katherine A Suess, Stéphane Charlot, Emma Curtis-Lake, Santiago Arribas, William M Baker, Kristan Boyett, Andrew J Bunker, Alex J Cameron, Jacopo Chevallard, Mirko Curti, Daniel J Eisenstein, Marijn Franx, Kevin Hainline, Ryan Hausen, Zhiyuan Ji, Benjamin D Johnson, Gareth C Jones, Roberto Maiolino, Michael V Maseda, Erica Nelson, Eleonora Parlanti, Tim Rawle

Abstract:

We explore the kinematic gas properties of six 5.5 < z < 7.4 galaxies in the JWST Advanced Deep Extragalactic Survey (JADES), using high-resolution JWST/NIRSpec multi-object spectroscopy of the rest-frame optical emission lines [O III ] and H α . The objects are small and of low stellar mass (∼1 kpc; M * ∼ 10 7 − 9 M ⊙ ), less massive than any galaxy studied kinematically at z > 1 thus far. The cold gas masses implied by the observed star formation rates are about ten times higher than the stellar masses. We find that their ionised gas is spatially resolved by JWST, with evidence for broadened lines and spatial velocity gradients. Using a simple thin-disc model, we fit these data with a novel forward-modelling software that accounts for the complex geometry, point spread function, and pixellation of the NIRSpec instrument. We find the sample to include both rotation- and dispersion-dominated structures, as we detect velocity gradients of v ( r e )∼100 − 150 km s −1 , and we find velocity dispersions of σ 0 ∼ 30 − 70 km s −1 that are comparable to those at cosmic noon. The dynamical masses implied by these models ( M dyn ∼ 10 9 − 10 M ⊙ ) are higher than the stellar masses by up to a factor 40, and they are higher than the total baryonic mass (gas + stars) by a factor of ∼3. Qualitatively, this result is robust even if the observed velocity gradients reflect ongoing mergers rather than rotating discs. Unless the observed emission line kinematics is dominated by outflows, this implies that the centres of these galaxies are dominated by dark matter or that star formation is three times less efficient, leading to higher inferred gas masses.
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