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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.

Dr Madalina Tudorache

Postdoctoral Research Assistant

Research theme

  • Astronomy and astrophysics
  • Particle astrophysics & cosmology

Sub department

  • Astrophysics

Research groups

  • Galaxy formation and evolution
  • Hintze Centre for Astrophysical Surveys
  • MeerKAT
madalina.tudorache@physics.ox.ac.uk
Denys Wilkinson Building, room 650
  • About
  • Publications

Thermostats, Not Engines: A New Picture of Halo Gas Regulation

ArXiv 2605.16488 (2026)

Authors:

Hiranya V Peiris, Andrew Pontzen, Madalina N Tudorache, Anik Halder, Stephen Thorp, Sinan Deger, Joop Schaye, Matthieu Schaller
Details from ArXiV

MIGHTEE-H i: the star-forming properties of H i -selected galaxies

Monthly Notices of the Royal Astronomical Society Oxford University Press 548:4 (2026) stag810

Authors:

Madalina N Tudorache, MJ Jarvis, AA Ponomareva, I Heywood, N Maddox, M Glowacki, BS Frank, M Baes, R Davé, SL Jung, M Maksymowicz-Maciata, H Pan, K Spekkens

Abstract:

The interplay between atomic gas and the star formation history (SFH) of a galaxy are intrinsically linked, and we need to decouple these dependencies to understand their role in galaxy formation and evolution. In this paper, we analyse the SFH of 203 galaxies from the MIGHTEE-H i Survey Early Science Release data, cross-matched to with multiwavelength photometry across the COSMOS and XMM-LSS fields. We focus on the relationships between H i properties and star formation, with a sample which primarily traces gas-rich, star-forming systems at low redshift, extending to low stellar masses and probing regimes that are difficult to access with optically selected samples. A strong correlation emerges between a galaxy’s H i-to-stellar mass ratio and the time of formation, alongside an inverse correlation between stellar mass and time of formation, regardless of the inferred SFH. Additionally, galaxies with lower stellar masses and higher H i-to-stellar mass ratios exhibit longer gas depletion times compared to more massive galaxies, which appear to have depleted their gas and formed stars more efficiently. This suggests that smaller, gas-rich galaxies have higher depletion times due to shallower potential wells and less efficient star formation. Within this H i-selected sample, the efficiency of star formation is regulated primarily by stellar mass and gas fraction, with low-mass galaxies retaining extended atomic reservoirs due to inefficient conversion of H i into stars.
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pop-cosmos: Forward modeling KiDS-1000 redshift distributions using realistic galaxy populations

ArXiv 2602.03935 (2026)

Authors:

Boris Leistedt, Hiranya V Peiris, Anik Halder, Stephen Thorp, Daniel J Mortlock, Arthur Loureiro, Justin Alsing, Gurjeet Jagwani, Madalina N Tudorache, Sinan Deger, Joel Leja, Benedict Van den Bussche, Angus H Wright, Shun-Sheng Li, Konrad Kuijken, Hendrik Hildebrandt
Details from ArXiV

pop-cosmos: Redshifts and physical properties of KiDS-1000 galaxies

ArXiv 2602.0393 (2026)

Authors:

Anik Halder, Hiranya V Peiris, Stephen Thorp, Boris Leistedt, Daniel J Mortlock, Gurjeet Jagwani, Madalina N Tudorache, Sinan Deger, Benedict Van den Bussche, Joel Leja, Angus H Wright
Details from ArXiV

A 15 Mpc rotating galaxy filament at redshift z = 0.032

Monthly Notices of the Royal Astronomical Society Oxford University Press 544:4 (2025) 4306-4316

Authors:

Madalina N Tudorache, SL Jung, MJ Jarvis, I Heywood, AA Ponomareva, AA Vărăşteanu, N Maddox, T Yasin, M Glowacki

Abstract:

Understanding the cold atomic hydrogen gas (H i) within cosmic filaments has the potential to pin down the relationship between the low density gas in the cosmic web and how the galaxies that lie within it grow using this material. We report the discovery of a cosmic filament using 14 H i-selected galaxies that form a very thin elongated structure of 1.7 Mpc. These galaxies are embedded within a much larger cosmic web filament, traced by optical galaxies, that spans at least Mpc. We find that the spin axes of the H i galaxies are significantly more strongly aligned with the cosmic web filament () than cosmological simulations predict, with the optically selected galaxies showing alignment to a lesser degree (). This structure demonstrates that within the cosmic filament, the angular momentum of galaxies is closely connected to the large-scale filamentary structure. We also find strong evidence that the galaxies are orbiting around the spine of the filament, making this one of the largest rotating structures discovered thus far, and from which we can infer that there is transfer of angular momentum from the filament to the individual galaxies. The abundance of H i galaxies along the filament and the low dynamical temperature of the galaxies within the filament indicates that this filament is at an early evolutionary stage where the imprint of cosmic matter flow on galaxies has been preserved over cosmic time.
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