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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 Rohan Varadaraj

Postdoctoral Research Assistant

Research theme

  • Astronomy and astrophysics

Sub department

  • Astrophysics

Research groups

  • Galaxy formation and evolution
rohan.varadaraj@physics.ox.ac.uk
Denys Wilkinson Building, room 465
  • About
  • Publications

MIGHTEE: The Host-Galaxy Associated Catalogue of the Radio Sources in MIGHTEE Continuum Data Release 1

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) (2026) stag1408

Authors:

CL Hale, J Hamlett, IH Whittam, MJ Jarvis, MJ Hardcastle, SL Jung, N Stylianou, RG Varadaraj, M Vaccari, L Barchiesi, PN Best, KKL Charlton, E Malefahlo, E Moravec, JP Moss, M Rakototafika, TF Rarivoarinoro, F Sinigaglia, MN Tudorache, SI Loubser, L Heino, A Saintonge, A Mazumder, N Netshiavha, DJB Smith, L Verdes-Montenegro, J Delhaize, H Pan, F Pozzi, Z Randriamanakoto, L Stockenstroom, AA Vărăşteanu, E Vardoulaki, WL Williams, RAA Bowler, L Marchetti, A Matthews

Abstract:

Abstract Radio continuum surveys provide samples of active galactic nuclei (AGN) and star forming galaxies (SFGs) to high redshifts, free of biases due to dust obscuration. However, radio detected sources require multi-wavelength counterparts to understand their intrinsic properties (e.g. redshift, stellar mass) and to study the evolution of star formation and AGN activity. In this work we present host galaxy counterparts for the MeerKAT International GHz Tiered Extragalactic Exploration (MIGHTEE) survey continuum Data Release 1 in regions with the best ancillary data (totalling 7.5 sq. deg). We combine statistical cross-matching and visual inspection to identify Ks-band selected host galaxies, and additionally combine multiple radio components into single physical objects, where needed. This results in a combined radio catalogue of ~66 000 sources, with host counterparts and redshifts identified for ~95 per cent of sources in the COSMOS field, ~91 per cent in XMM-LSS and ~90 per cent in CDFS-DEEP. This includes a significant fraction of sources with spectroscopic redshifts within the COSMOS field (~50 per cent), with ~30 and ~20 per cent in the XMM-LSS and CDFS-DEEP fields respectively. Using the cross-matched catalogue, we make an initial identification of radio-excess and star forming galaxies based on comparisons of the radio luminosities to host star formation rates. Using this split as a proxy for radio loud AGN or SFGs, we present expectations for the redshift distributions of these sources, finding broad agreement with those from deep radio luminosity functions and simulated catalogues.
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Euclid: Discovery of 31 new quasars at $6.6 < z < 7.8$

ArXiv 2607.03432 (2026)

Authors:

D Yang, JF Hennawi, F Guarneri, J Wolf, S Belladitta, J-T Schindler, ACN Hughes, E Bañados, DJ Mortlock, J Yang, F Wang, X Fan, K Jahnke, D Stern, CJ Willott, AJ Barth, HJA Rottgering, RG Varadaraj, R Decarli, A-C Eilers, M Ezziati, Y Fu, J Huang, X Jin, Y Kang, LN Martinez-Ramirez, Y Matsuoka, M Onoue, R Pello, RP Remigio, WL Tee, B Venemans, G Vietri, B Wang, LJ Abbo, H Atek, S Bisogni, SEI Bosman, RAA Bowler, CJ Conselice, FB Davies, CM Gutierrez, Y Harikane, K Rubinur, CC Lovell, M Magliocchetti, J Matthee, F Ricci, M Scialpi, D Scott, L Spinoglio, F Tarsitano, Y Toba, F Walter, JR Weaver, G Zamorani, B Altieri, A Amara, S Andreon, H Aussel, C Baccigalupi, M Baldi, A Balestra, S Bardelli, P Battaglia, A Biviano, E Branchini, M Brescia, S Camera, G Cañas-Herrera, V Capobianco, C Carbone, J Carretero, M Castellano, G Castignani, S Cavuoti, KC Chambers, A Cimatti, C Colodro-Conde, G Congedo, L Conversi, Y Copin, F Courbin, HM Courtois, M Cropper, J-C Cuillandre, H Degaudenzi, G De Lucia, C Dolding, H Dole, M Douspis, F Dubath, X Dupac, S Dusini, S Escoffier, M Farina, R Farinelli, S Ferriol, F Finelli, N Fourmanoit, M Frailis, E Franceschi, M Fumana, S Galeotta, K George, B Gillis, C Giocoli, P Gómez-Alvarez, J Gracia-Carpio, A Grazian, F Grupp, L Guzzo, S Gwyn, SVH Haugan, H Hoekstra, W Holmes, IM Hook, F Hormuth, A Hornstrup, M Jhabvala, S Kermiche, B Kubik, K Kuijken, M Kümmel, M Kunz, H Kurki-Suonio, AMC Le Brun, S Ligori, PB Lilje, V Lindholm, I Lloro, G Mainetti, D Maino, E Maiorano, O Mansutti, O Marggraf, M Martinelli, N Martinet, F Marulli, RJ Massey, HJ McCracken, E Medinaceli, S Mei, Y Mellier, M Meneghetti, E Merlin, G Meylan, JJ Mohr, A Mora, M Moresco, L Moscardini, E Munari, R Nakajima, C Neissner, RC Nichol, S-M Niemi, C Padilla, S Paltani, F Pasian, K Pedersen, WJ Percival, V Pettorino, S Pires, G Polenta, M Poncet, LA Popa, L Pozzetti, GD Racca, F Raison, R Rebolo, A Renzi, J Rhodes, G Riccio, H-W Rix, E Romelli, M Roncarelli, C Rosset, B Rusholme, R Saglia, Z Sakr, D Sapone, M Sauvage, M Schirmer, P Schneider, T Schrabback, A Secroun, G Seidel, S Serrano, E Sihvola, P Simon, C Sirignano, G Sirri, L Stanco, J Steinwagner, P Tallada-Crespí, I Tereno, N Tessore, S Toft, R Toledo-Moreo, F Torradeflot, I Tutusaus, L Valenziano, J Valiviita, T Vassallo, Y Wang, J Weller, FM Zerbi, E Zucca, G Fabbian, M Huertas-Company, J Martín-Fleitas, P Monaco, V Scottez, M Viel
Details from ArXiV

Euclid: Discovery of 31 new quasars at 6.6 < z < 7.8

Astronomy & Astrophysics EDP Sciences 711 (2026) a104

Authors:

D Yang, JF Hennawi, F Guarneri, J Wolf, S Belladitta, J-T Schindler, ACN Hughes, E Bañados, DJ Mortlock, J Yang, F Wang, X Fan, K Jahnke, D Stern, CJ Willott, AJ Barth, HJA Rottgering, RG Varadaraj, R Decarli, A-C Eilers, M Ezziati, Y Fu, J Huang, X Jin, Y Kang, LN Martinez-Ramirez, Y Matsuoka, M Onoue, R Pello, RP Remigio, WL Tee, B Venemans, G Vietri, B Wang, LJ Abbo, H Atek, S Bisogni, SEI Bosman, RAA Bowler, CJ Conselice, FB Davies, CM Gutierrez, Y Harikane, K Rubinur, CC Lovell, M Magliocchetti, J Matthee, F Ricci, M Scialpi, D Scott, L Spinoglio, F Tarsitano, Y Toba, F Walter, JR Weaver, G Zamorani, B Altieri, A Amara, S Andreon, H Aussel, C Baccigalupi, M Baldi, A Balestra, S Bardelli, P Battaglia, A Biviano, E Branchini, M Brescia, S Camera, G Cañas-Herrera, V Capobianco, C Carbone, J Carretero, M Castellano, G Castignani, S Cavuoti, KC Chambers, A Cimatti, C Colodro-Conde, G Congedo, L Conversi, Y Copin, F Courbin, HM Courtois, M Cropper, J-C Cuillandre, H Degaudenzi, G De Lucia, C Dolding, H Dole, M Douspis, F Dubath, X Dupac, S Dusini, S Escoffier, M Farina, R Farinelli, S Ferriol, F Finelli, N Fourmanoit, M Frailis, E Franceschi, M Fumana, S Galeotta, K George, B Gillis, C Giocoli, P Gómez-Alvarez, J Gracia-Carpio, A Grazian, F Grupp, L Guzzo, S Gwyn, SVH Haugan, H Hoekstra, W Holmes, IM Hook, F Hormuth, A Hornstrup, M Jhabvala, S Kermiche, B Kubik, K Kuijken, M Kümmel, M Kunz, H Kurki-Suonio, AMC Le Brun, S Ligori, PB Lilje, V Lindholm, I Lloro, G Mainetti, D Maino, E Maiorano, O Mansutti, O Marggraf, M Martinelli, N Martinet, F Marulli, RJ Massey, HJ McCracken, E Medinaceli, S Mei, Y Mellier, M Meneghetti, E Merlin, G Meylan, JJ Mohr, A Mora, M Moresco, L Moscardini, E Munari, R Nakajima, C Neissner, RC Nichol, S-M Niemi, C Padilla, S Paltani, F Pasian, K Pedersen, WJ Percival, V Pettorino, S Pires, G Polenta, M Poncet, LA Popa, L Pozzetti, GD Racca, F Raison, R Rebolo, A Renzi, J Rhodes, G Riccio, H-W Rix, E Romelli, M Roncarelli, C Rosset, B Rusholme, R Saglia, Z Sakr, D Sapone, M Sauvage, M Schirmer, P Schneider, T Schrabback, A Secroun, G Seidel, S Serrano, E Sihvola, P Simon, C Sirignano, G Sirri, L Stanco, J Steinwagner, P Tallada-Crespí, I Tereno, N Tessore, S Toft, R Toledo-Moreo, F Torradeflot, I Tutusaus, L Valenziano, J Valiviita, T Vassallo, Y Wang, J Weller, FM Zerbi, E Zucca, G Fabbian, M Huertas-Company, J Martín-Fleitas, P Monaco, V Scottez, M Viel

Abstract:

We report the discovery of 31 new high- z quasars in the redshift range 6.6 < z < 7.8. These quasars were selected from approximately 3000 deg 2 of sky covered during the first 1.5 years of the Euclid Wide Survey, representing the initial results of the Euclid high- z quasar search. Our candidate selection employed multiple machine-learning and probabilistic techniques applied to the EuclidI E , Y E , J E , and H E images, supplemented by ancillary z -band data when available. Spectroscopic follow-up observations were carried out with Keck, Magellan, and the Large Binocular Telescope (LBT). Among the new discoveries, there are 12 quasars at z ≥ 7, more than doubling the number of previously known quasars at z ≥ 7. The newly discovered quasars exhibit 21.2 < J E < 23.2 (−25.5 < M 1450 < −23.6), extending quasar studies to the faint end of the quasar luminosity function (QLF) at z ≳ 7. The quasar with the highest- z , EUCL J172902.75+641018.1 at z ≈ 7.77, sets the new redshift record for the most distant quasar ever reported. These discoveries demonstrate Euclid ’s transformative role in high- z quasar discovery and set the stage for future follow-up studies of the early galaxies hosting quasars, supermassive black hole growth, and the intergalactic medium in the epoch of reionisation.
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MIGHTEE: The evolving radio luminosity functions of star-forming galaxies to z ∼ 4.5 and the cosmic history of star formation

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) (2026) stag616

Authors:

Nijin J Thykkathu, Matt J Jarvis, Imogen H Whittam, CL Hale, AM Matthews, I Heywood, Eliab Malefahlo, RG Varadaraj, N Stylianou, Chris Pearson, Nick Seymour, Mattia Vaccari

Abstract:

Abstract A key question in extragalactic astronomy is how the star-formation rate density (SFRD) evolves over cosmic time. A powerful way of addressing this question is using radio-continuum observations, where the radio waves are unaffected by dust and are able to reach sufficient resolution to resolve individual galaxies. We present an investigation of the 1.4 GHz radio luminosity functions (RLFs) of star-forming galaxies (SFGs) and Active Galactic Nuclei (AGN) using deep radio continuum observations in the COSMOS and XMM–LSS fields, covering a combined area of ∼4 deg2. These data enable the most accurate measurement of the evolution in the SFRD from mid-frequency radio continuum observations. We model the total RLF as the sum of evolving SFG and AGN components, negating the need for individual source classification. We find that the SFGs have systematically higher space densities at fixed luminosity than found in previous radio studies, but consistent with more recent studies with MeerKAT. We attribute this to the excellent low-surface brightness sensitivity of MeerKAT. We then determine the evolution of the SFRD. Adopting the far-infrared – radio correlation results in a significantly higher SFRD at z > 1, compared to combined UV and far-infrared measurements. However, using more recent relations for the correlation between star-formation rate and radio luminosity, based on full spectral energy distribution modelling, can resolve this apparent discrepancy. Thus radio observations provide a powerful method of determining the total SFRD, in the absence of dust-sensitive far-infrared data.
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MIGHTEE/COSMOS-3D: the discovery of three spectroscopically confirmed radio-selected star-forming galaxies at z = 4.9–5.6

Monthly Notices of the Royal Astronomical Society Oxford University Press 547:4 (2026) stag473

Authors:

RG Varadaraj, A Saxena, S Fakiolas, IH Whittam, MJ Jarvis, RA Meyer, CL Hale, K Kakiichi, M Li, JB Champagne, B Jin, ZJ Li, M Shuntov

Abstract:

Radio observations offer a dust-independent probe of star formation and active galactic nucleus (AGN) activity, but sufficiently deep data are required to access the cross-over luminosity between these processes at high redshift (). We present three spectroscopically confirmed high-redshift radio sources (HzRSs) detected at 1.3 GHz at –5.6, with radio luminosities spanning –. These sources were first identified as high-redshift candidates through spectral energy distribution (SED) fitting of archival Hubble, James Webb Space Telescope (JWST) NIRCam + MIRI, and ground-based photometry, and then spectroscopically confirmed via the emission line using wide-field slitless spectroscopy from JWST COSMOS-3D. The star formation rates (SFRs) measured from SED fitting, the flux, and the 1.3 GHz luminosity, span –, demonstrating broad agreement between these SFR tracers. We find that these three sources lie either on or 0.5–1.0 dex above the star-forming main sequence at –6 and have undergone a recent burst of star formation. The sources have extended rest-ultraviolet (UV)/optical morphologies with no evidence for a dominant point source component, indicating that an AGN is unlikely to dominate their rest-UV and optical emission. Two of the sources have complex, multicomponent rest-frame UV/optical morphologies, suggesting that their starbursts may be triggered by merging activity. These HzRSs open up a new window towards probing radio emission powered by star formation alone at , representing a remarkable opportunity to begin tracing star formation, independent of dust, in the early Universe.
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