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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 Geert Jan Talens

Postdoctoral Research Assistant

Research theme

  • Astronomy and astrophysics

Sub department

  • Astrophysics

Research groups

  • Exoplanets and Stellar Physics
geertjan.talens@physics.ox.ac.uk
Denys Wilkinson Building, room 712
  • About
  • Publications

The β Pictoris b Hill sphere transit campaign

Astronomy & Astrophysics EDP Sciences 687 (2024) a309

Authors:

Sebastian Zieba, Konstanze Zwintz, Matthew Kenworthy, Daniel Hey, Simon J Murphy, Rainer Kuschnig, Lyu Abe, Abdelkrim Agabi, Djamel Mekarnia, Tristan Guillot, François-Xavier Schmider, Philippe Stee, Yuri De Pra, Marco Buttu, Nicolas Crouzet, Samuel Mellon, Jeb Bailey, Remko Stuik, Patrick Dorval, Geert Jan Talens, Steven Crawford, Eric Mamajek, Iva Laginja, Michael Ireland, Blaine Lomberg, Rudi Kuhn, Ignas Snellen, Paul Kalas, Jason J Wang, Kevin B Stevenson, Ernst de Mooij, Anne-Marie Lagrange, Sylvestre Lacour, Mathias Nowak, Paul A Strøm, Zhang Hui, Lifan Wang
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Giant Outer Transiting Exoplanet Mass (GOT 'EM) Survey: III. Recovery and Confirmation of a Temperate, Mildly Eccentric, Single-Transit Jupiter Orbiting TOI-2010

(2023)

Authors:

Christopher R Mann, Paul A Dalba, David Lafrenière, Benjamin J Fulton, Guillaume Hébrard, Isabelle Boisse, Shweta Dalal, Magali Deleuil, Xavier Delfosse, Olivier Demangeon, Thierry Forveille, Neda Heidari, Flavien Kiefer, Eder Martioli, Claire Moutou, Michael Endl, William D Cochran, Phillip MacQueen, Franck Marchis, Diana Dragomir, Arvind F Gupta, Dax L Feliz, Belinda A Nicholson, Carl Ziegler, Steven Villanueva, Jason Rowe, Geert Jan Talens, Daniel Thorngren, Daryll LaCourse, Tom Jacobs, Andrew W Howard, Allyson Bieryla, David W Latham, Markus Rabus, Tara Fetherolf, Coel Hellier, Steve B Howell, Peter Plavchan, Michael Reefe, Deven Combs, Michael Bowen, Justin Wittrock, George R Ricker, S Seager, Joshua N Winn, Jon M Jenkins, Thomas Barclay, David Watanabe, Karen A Collins, Jason D Eastman, Eric B Ting
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Giant Outer Transiting Exoplanet Mass (GOT ’EM) Survey. III. Recovery and Confirmation of a Temperate, Mildly Eccentric, Single-transit Jupiter Orbiting TOI-2010

Astronomical Journal IOP Publishing 166:6 (2023) 239

Authors:

Christopher R Mann, Paul A Dalba, David Lafrenière, Benjamin J Fulton, Guillaume Hébrard, Isabelle Boisse, Shweta Dalal, Magali Deleuil, Xavier Delfosse, Olivier Demangeon, Thierry Forveille, Neda Heidari, Flavien Kiefer, Eder Martioli, Claire Moutou, Michael Endl, William D Cochran, Phillip MacQueen, Franck Marchis, Diana Dragomir, Arvind F Gupta, Dax L Feliz, Belinda A Nicholson, Carl Ziegler

Abstract:

Large-scale exoplanet surveys like the Transiting Exoplanet Survey Satellite (TESS) mission are powerful tools for discovering large numbers of exoplanet candidates. Single-transit events are commonplace within the resulting candidate list due to the unavoidable limitation of the observing baseline. These single-transit planets often remain unverified due to their unknown orbital periods and consequent difficulty in scheduling follow-up observations. In some cases, radial velocity (RV) follow up can constrain the period enough to enable a future targeted transit detection. We present the confirmation of one such planet: TOI-2010 b. Nearly three years of RV coverage determined the period to a level where a broad window search could be undertaken with the Near-Earth Object Surveillance Satellite, detecting an additional transit. An additional detection in a much later TESS sector solidified our final parameter estimation. We find TOI-2010 b to be a Jovian planet (M P = 1.29 M Jup, R P = 1.05 R Jup) on a mildly eccentric orbit (e = 0.21) with a period of P = 141.83403 days. Assuming a simple model with no albedo and perfect heat redistribution, the equilibrium temperature ranges from about 360 to 450 K from apastron to periastron. Its wide orbit and bright host star (V = 9.85) make TOI-2010 b a valuable test bed for future low-insolation atmospheric analysis.
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The Near Infrared Imager and Slitless Spectrograph for the James Webb Space Telescope. I. Instrument Overview and In-flight Performance

Publications of the Astronomical Society of the Pacific 135:1051 (2023)

Authors:

D René, CJ Willott, JB Hutchings, A Sivaramakrishnan, L Albert, D Lafrenière, N Rowlands, MB Vila, AR Martel, S LaMassa, D Aldridge, É Artigau, P Cameron, P Chayer, NJ Cook, RA Cooper, A Darveau-Bernier, J Dupuis, C Earnshaw, N Espinoza, JC Filippazzo, AW Fullerton, D Gaudreau, R Gawlik, P Goudfrooij, C Haley, J Kammerer, D Kendall, SD Lambros, LI Ignat, M Maszkiewicz, A McColgan, T Morishita, NNQ Ouellette, C Pacifici, N Philippi, M Radica, S Ravindranath, J Rowe, A Roy, N Roy, K Saad, ST Sohn, GJ Talens, D Touahri, D Thatte, JM Taylor, T Vandal, K Volk, M Wander, G Warner, SH Zheng, J Zhou, R Abraham, M Beaulieu, B Benneke, L Ferrarese, R Jayawardhana, D Johnstone, L Kaltenegger, MR Meyer, JL Pipher, J Rameau, M Rieke, S Salhi, M Sawicki

Abstract:

The Near-Infrared Imager and Slitless Spectrograph (NIRISS) is the science module of the Canadian-built Fine Guidance Sensor onboard the James Webb Space Telescope (JWST). NIRISS has four observing modes: (1) broadband imaging featuring seven of the eight NIRCam broadband filters, (2) wide-field slitless spectroscopy at a resolving power of ∼150 between 0.8 and 2.2 μm, (3) single-object cross-dispersed slitless spectroscopy (SOSS) enabling simultaneous wavelength coverage between 0.6 and 2.8 μm at R ∼ 700, a mode optimized for exoplanet spectroscopy of relatively bright (J < 6.3) stars and (4) aperture masking interferometry (AMI) between 2.8 and 4.8 μm enabling high-contrast (∼10−3 − 10−4) imaging at angular separations between 70 and 400 mas for relatively bright (M < 8) sources. This paper presents an overview of the NIRISS instrument, its design, its scientific capabilities, and a summary of in-flight performance. NIRISS shows significantly better response shortward of ∼2.5 μm resulting in 10%-40% sensitivity improvement for broadband and low-resolution spectroscopy compared to pre-flight predictions. Two time-series observations performed during instrument commissioning in the SOSS mode yield very stable spectro-photometry performance within ∼10% of the expected noise. The first space-based companion detection of the tight binary star AB Dor AC through AMI was demonstrated.
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The Near Infrared Imager and Slitless Spectrograph for the James Webb Space Telescope. III. Single Object Slitless Spectroscopy

Publications of the Astronomical Society of the Pacific IOP Publishing 135:1049 (2023) 075001-075001

Authors:

Loïc Albert, David Lafrenière, René Doyon, Étienne Artigau, Kevin Volk, Paul Goudfrooij, André R Martel, Michael Radica, Jason Rowe, Néstor Espinoza, Arpita Roy, Joseph C Filippazzo, Antoine Darveau-Bernier, Geert Jan Talens, Anand Sivaramakrishnan, Chris J Willott, Alexander W Fullerton, Stephanie LaMassa, John B Hutchings, Neil Rowlands, M Begoña Vila, Julia Zhou, David Aldridge, Michael Maszkiewicz, Mathilde Beaulieu

Abstract:

Our ability to detect and characterize small planets in diverse environments is expanding rapidly with the development and continued improvement of the transit and radial velocity methods. Better models, instruments, and telescopes are producing greater planet yields and tighter planetary radius and mass constraints, which in turn provide new targets for atmospheric characterization and produce new insights on planet composition, formation, and evolution. In this thesis, I present work on the characterization and mass determination of small planets with the radial velocity method, the detection of new planets via the transit method, and the study of a planet’s atmosphere through transmission spectroscopy and its implications for planet formation and planet population features.First, I report on mass estimation and characterization of the long-period exoplanet Kepler- 538b. This sub-Neptune with a period of P = 81.7 days is the only planet known to be orbiting its Sun-like star (0.892 M⊙). Simultaneously modeling Kepler photometry and radial velocities (RVs) yields a semi-amplitude of 1.68 ± 0.39 m s−1 and a planet mass of 10.6 ± 2.5 M⊕, which made Kepler-538b the smallest planet beyond P = 50 days with an RV mass measurement at the time of publication. Precise mass measurements on long-period planets will not only directly address questions about the long-period planet population, but also draw comparisons and shed light on aspects of the short-period planet population like the planetary radius occurrence gap and the impact of high stellar irradiation on exoplanet compositions and atmospheres.Next, I discuss K2-136c, a sub-Neptune with a period of P = 17.3 days and the largest of three transiting planets orbiting a late-K dwarf (0.742 M⊙) in the young Hyades open cluster (650 ± 70 Myr). Collecting and analyzing RV data from the HARPS-N and ESPRESSO spectrographs jointly with photometry from the K2 and TESS space telescopes yielded an RV semi-amplitude of 5.46 ± 0.45 m s−1 for K2-136c, corresponding to a mass of 18.0 ± 1.7 M⊕. K2-136c is now the smallest planet to have a measured mass in an open cluster and one of the youngest planets ever with a mass measurement. As a result, this system adds an important new window into young small planet compositions, atmospheric mass loss constraints around young active stars, and planetary evolution at relatively unexplored ages.I then present the TATER planet detection pipeline and apply it to high-cadence photometry of 914 known planet systems observed during TESS Cycle 3. This work has led to the new validation of 4 short-period planets. This study provides independent modeling and vetting of hundreds of planet candidates while also expanding the known planet population and providing updated transit ephemerides and planet radii.Finally, I report on the atmospheric characterization of WASP-166b, a short-period super- Neptune (P = 5.44 d, Mp = 32.1 ± 1.6 M⊕, Rp = 7.1 ± 0.3 R⊕). WASP-166b is located near the edge of the Hot Neptune Desert, a sparse region of exoplanet parameter space at high stellar irradiation and intermediate planet radii. Using transmission spectroscopy of WASP-166b (two transit observations with the James Webb Space Telescope), initial analyses show evidence of H2O and CO2; no evidence of SO2, NH3, or a cloud deck; constraints on planetary metallicity and the C/O ratio; and a plausible formation pathway that includes planetesimal accretion followed by core erosion or photoevaporation. This in turn points to mechanisms that can create substellar or stellar C/O ratios and superstellar metallicities, like photoevaporation and core erosion, as feasible components of the formation of the Hot Neptune Desert
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