Research Outputs

Now showing 1 - 7 of 7
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    Publication
    The TESS-Keck Survey. XVIII. A Sub-Neptune and Spurious long-period signal in the TOI-1751 system
    (IOP Publishing, 2024) ;
    Desai, Anmol
    ;
    Turtelboom, Emma
    ;
    Harada, Caleb
    ;
    Dressing, Courtney
    ;
    Rice, David
    ;
    Murphy, Joseph
    ;
    Brinkman, Casey
    ;
    Chontos, Ashley
    ;
    Crossfield, Ian
    ;
    Dai, Fei
    ;
    Hill, Michelle
    ;
    Fetherolf, Tara
    ;
    Giacalone, Steven
    ;
    Howard, Andrew
    ;
    Huber, Daniel
    ;
    Isaacson, Howard
    ;
    Kane, Stephen
    ;
    Lubin, Jack
    ;
    MacDougall, Mason
    ;
    Mayo, Andrew
    ;
    Močnik, Teo
    ;
    Polanski, Alex
    ;
    Rice, Malena
    ;
    Robertson, Paul
    ;
    Rubenzahl, Ryan
    ;
    Van Zandt, Judah
    ;
    Weiss, Lauren
    ;
    Bieryla, Allyson
    ;
    Buchhave, Lars
    ;
    Jenkins, Jon
    ;
    Kostov, Veselin
    ;
    Levine, Alan
    ;
    Lillo-Box, Jorge
    ;
    Paegert, M.
    ;
    Seager, S.
    ;
    Stassun, Keivan
    ;
    Ting, Eric
    ;
    Watanabe, David
    ;
    Winn, Joshua
    We present and confirm TOI-1751 b, a transiting sub-Neptune orbiting a slightly evolved, solar-type, metal-poor star (Teff = 5996 ± 110 K, log(g)=4.2 + 0.1, V = 9.3 mag, [Fe/H] = −0.40 ± 0.06 dex) every 37.47 days. We use TESS photometry to measure a planet radius of 2.77-0.07+0.15 R. We also use both Keck/HIRES and APF/Levy radial velocities (RV) to derive a planet mass of 14.5-3.14+3.15M, and thus a planet density of 3.6 ± 0.9 g cm−3. There is also a long-period (∼400 days) signal that is observed in only the Keck/HIRES data. We conclude that this long-period signal is not planetary in nature and is likely due to the window function of the Keck/HIRES observations. This highlights the role of complementary observations from multiple observatories to identify and exclude aliases in RV data. Finally, we investigate the potential compositions of this planet, including rocky and water-rich solutions, as well as theoretical irradiated ocean models. TOI-1751 b is a warm sub-Neptune with an equilibrium temperature of ∼820 K. As TOI-1751 is a metal-poor star, TOI-1751 b may have formed in a water-enriched formation environment. We thus favor a volatile-rich interior composition for this planet.
  • Publication
    TESS-Keck Survey. V. twin Sub-Neptunes transiting the nearby G Star HD 63935
    (IOP Publishing, 2021) ;
    Scarsdale, Nicholas
    ;
    Murphy, Joseph
    ;
    Batalha, Natalie
    ;
    Crossfield, Ian
    ;
    Dressing, Courtney
    ;
    Fulton, Benjamin
    ;
    Howard, Andrew
    ;
    Huber, Daniel
    ;
    Isaacson, Howard
    ;
    Kane, Stephen
    ;
    Petigura, Erik
    ;
    Robertson, Paul
    ;
    Roy, Arpita
    ;
    Weiss, Lauren
    ;
    Beard, Corey
    ;
    Behmard, Aida
    ;
    Chontos, Ashley
    ;
    Christiansen, Jessie
    ;
    Ciardi, David
    ;
    Claytor, Zachary
    ;
    Collins, Karen
    ;
    Collins, Kevin
    ;
    Dai, Fei
    ;
    Dalba, Paul
    ;
    Dragomir, Diana
    ;
    Fetherolf, Tara
    ;
    Fukui, Akihiko
    ;
    Giacalone, Steven
    ;
    Gonzales, Erica
    ;
    Hill, Michelle
    ;
    Hirsch, Lea
    ;
    Jensen, Eric
    ;
    Kosiarek, Molly
    ;
    de Leon, Jerome
    ;
    Lubin, Jack
    ;
    Lund, Michael
    ;
    Luque, Rafael
    ;
    Mayo, Andrew
    ;
    Močnik, Teo
    ;
    Mori, Mayuko
    ;
    Narita, Norio
    ;
    Nowak, Grzegorz
    ;
    Pallé, Enric
    ;
    Rosenthal, Lee
    ;
    Rubenzahl, Ryan
    ;
    Schlieder, Joshua
    ;
    Shporer, Avi
    ;
    Stassun, Keivan
    ;
    Twicken, Joe
    ;
    Wang, Gavin
    ;
    Yahalomi, Daniel
    ;
    Jenkins, Jon
    ;
    Latham, David
    ;
    Ricker, George
    ;
    Seager, S.
    ;
    Vanderspek, Roland
    ;
    Winn, Joshua
    We present the discovery of two nearly identically sized sub-Neptune transiting planets orbiting HD 63935, a bright (V = 8.6 mag), Sun-like (Teff = 5560 K) star at 49 pc. TESS identified the first planet, HD 63935 b (TOI509.01), in Sectors 7 and 34. We identified the second signal (HD 63935 c) in Keck High Resolution Echelle Spectrometer and Lick Automated Planet Finder radial velocity data as part of our follow-up campaign. It was subsequently confirmed with TESS photometry in Sector 34 as TOI-509.02. Our analysis of the photometric and radial velocity data yielded a robust detection of both planets with periods of 9.0600 ± 0.007 and 21.40 ± 0.0019 days, radii of 2.99 ± 0.14 and 2.90 ± 0.13 R⊕, and masses of 10.8 ± 1.8 and 11.1 ± 2.4 M⊕. We calculated densities for planets b and c consistent with a few percent of the planet mass in hydrogen/helium envelopes. We also describe our survey’s efforts to choose the best targets for James Webb Space Telescope atmospheric followup. These efforts suggest that HD 63935 b has the most clearly visible atmosphere of its class. It is the best target for transmission spectroscopy (ranked by the transmission spectroscopy metric, a proxy for atmospheric observability) in the so far uncharacterized parameter space comprising sub-Neptune-sized (2.6 R⊕ < Rp < 4 R⊕), moderately irradiated (100 F⊕ < Fp < 1000 F⊕) planets around G stars. Planet c is also a viable target for transmission spectroscopy, and given the indistinguishable masses and radii of the two planets, the system serves as a natural laboratory for examining the processes that shape the evolution of sub-Neptune planets.
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    Publication
    TESS discovery of a super-Earth and two sub-Neptunes orbiting the bright, nearby, Sun-like star HD 22946
    (EDP Sciences, 2022) ;
    Cacciapuoti, Luca
    ;
    Inno, Laura
    ;
    Covone, Giovanni
    ;
    Kostov, Veselin
    ;
    Barclay, Thomas
    ;
    Quintana, Elisa
    ;
    Colon, Knicole
    ;
    Stassun, Keivan
    ;
    Hord, Benjamin
    ;
    Giacalone, Steven
    ;
    Kane, Stephen
    ;
    Hoffman, Kelsey
    ;
    Rowe, Jason
    ;
    Wang, Gavin
    ;
    Collins, Kevin
    ;
    Collins, Karen
    ;
    Tan, Thiam-Guan
    ;
    Gallo, Francesco
    ;
    Magliano, Christian
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    Ienco, Riccardo
    ;
    Ciardi, David
    ;
    Furlan, Elise
    ;
    Howell, Steve
    ;
    Gnilka, Crystal
    ;
    Scott, Nicholas
    ;
    Lester, Kathryn
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    Ziegler, Carl
    ;
    Briceño, César
    ;
    Law, Nicholas
    ;
    Mann, Andrew
    ;
    Burke, Christopher
    ;
    Quinn, Samuel
    ;
    Ciaramella, Angelo
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    De Luca, Pasquale
    ;
    Fiscale, Stefano
    ;
    Rotundi, Alessandra
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    Marcellino, Livia
    ;
    Galletti, Ardelio
    ;
    Bifulco, Ida
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    Oliva, Fabrizio
    ;
    Spencer, Alton
    ;
    Kaltenegger, Lisa
    ;
    McDermott, Scott
    ;
    Essack, Zahra
    ;
    Jenkins, Jon
    ;
    Wohler, Bill
    ;
    Winn, Joshua
    ;
    Seager, S.
    ;
    Vanderspek, Roland
    ;
    Zhou, George
    ;
    Shporer, Avi
    ;
    Dragomir, Diana
    ;
    Fong, William
    We report the Transiting Exoplanet Survey Satellite (TESS) discovery of a three-planet system around the bright Sun-like star HD 22946 (V ≈ 8.3 mag), also known as TIC 100990000, located 63 pc from Earth. The system was observed by TESS in Sectors 3, 4, 30, and 31 and two planet candidates, labeled TESS Objects of Interest (TOIs) 411.01 (planet c) and 411.02 (planet b), were identified on orbits of 9.57 and 4.04 days, respectively. In this work, we validate the two planets and recover an additional single transit-like signal in the light curve, which suggests the presence of a third transiting planet with a longer period of about 46 days. We assess the veracity of the TESS transit signals and use follow-up imaging and time-series photometry to rule out false-positive scenarios, including unresolved binary systems, nearby eclipsing binaries, and contamination of the light curves by background or foreground stars. Parallax measurements from Gaia Early Data Release 3 together with broad-band photometry and spectroscopic follow-up by the TESS FollowUp Observing Program (TFOP) allowed us to constrain the stellar parameters of TOI-411, including its radius of 1.157 ± 0.025 R⊙. Adopting this value, we determined the radii for the three exoplanet candidates and found that planet b is a super-Earth with a radius of 1.48 ± 0.06 R⊕, while planets c and d are sub-Neptunian planets with radii of 2.35 ± 0.08 R⊕ and 2.78 ± 0.13 R⊕ respectively. Using dynamical simulations, we assessed the stability of the system and evaluated the possibility of the presence of other undetected, non-transiting planets by investigating its dynamical packing. We find that the system is dynamically stable and potentially unpacked, with enough space to host at least one more planet between c and d. Finally, given that the star is bright and nearby, we discuss possibilities for detailed mass characterisation of its surrounding worlds and opportunities for the detection of their atmospheres with the James Webb Space Telescope.
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    Publication
    TOI-1842b: A Transiting Warm Saturn Undergoing Reinflation around an Evolving Subgiant
    (The Astronomical Journal, 2022)
    Wittenmyer, Robert
    ;
    Clark, Jake
    ;
    Trifonov, Trifon
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    Addison, Brett
    ;
    Wright, Duncan
    ;
    Stassun, Keivan
    ;
    Horner, Jonathan
    ;
    Lowson, Nataliea
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    Kielkopf, John
    ;
    Kane, Stephen
    ;
    Plavchan, Peter
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    Shporer, Avi
    ;
    Zhang, Hui
    ;
    Bowler, Brendan
    ;
    Mengel, Matthew
    ;
    Okumura, Jack
    ;
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    Johnson, Marshall
    ;
    Harbeck, Daniel
    ;
    Tronsgaard, René
    ;
    Buchhave, Lars
    ;
    Collins, Karen
    ;
    Collins, Kevin
    ;
    Gan, Tianjun
    ;
    Jensen, Eric
    ;
    Howell, Steve
    ;
    Furlan, E.
    ;
    Gnilka, Crystal
    ;
    Lester, Kathryn
    ;
    Matson, Rachel
    ;
    Scott, Nicholas
    ;
    Ricker, George
    ;
    Vanderspek, Roland
    ;
    Latham, David
    ;
    Seager, S.
    ;
    Winn, Joshua
    ;
    Jenkins, Jon
    ;
    Rudat, Alexander
    ;
    Quintana, Elisa
    ;
    Rodriguez, David
    ;
    Caldwell, Douglas
    ;
    Quinn, Samuel
    ;
    Essack, Zahra
    ;
    Bouma, Luke
    The imminent launch of space telescopes designed to probe the atmospheres of exoplanets has prompted new efforts to prioritize the thousands of transiting planet candidates for follow-up characterization. We report the detection and confirmation of TOI-1842b, a warm Saturn identified by TESS and confirmed with ground-based observations from Minerva-Australis, NRES, and the Las Cumbres Observatory Global Telescope. This planet has a radius of R J, a mass of M J, an orbital period of days, and an extremely low density (? = 0.252 0.091 g cm-3). TOI-1842b has among the best known combinations of large atmospheric scale height (893 km) and host-star brightness (J = 8.747 mag), making it an attractive target for atmospheric characterization. As the host star is beginning to evolve off the main sequence, TOI-1842b presents an excellent opportunity to test models of gas giant reinflation. The primary transit duration of only 4.3 hr also makes TOI-1842b an easily-schedulable target for further ground-based atmospheric characterization. © 2022. The American Astronomical Society. All rights reserved.
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    Publication
    A possible alignment between the orbits of planetary systems and their visual binary companions
    (The Astronomical Journal, 2022)
    Christian, Sam
    ;
    Vanderburg, Andrew
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    Becker, Juliette
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    Yahalomi, Daniel
    ;
    Pearce, Logan
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    Zhou, George
    ;
    Collins, Karen
    ;
    Kraus, Adam
    ;
    Stassun, Keivan
    ;
    Beurs, Zoe de
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    Ricker, George
    ;
    Vanderspek, Roland
    ;
    Latham, David
    ;
    Winn, Joshua
    ;
    Seager, S.
    ;
    Jenkins, Jon
    ;
    Abe, Lyu
    ;
    Agabi, Karim
    ;
    Amado, Pedro
    ;
    Baker, David
    ;
    Barkaoui, Khalid
    ;
    Benkhaldoun, Zouhair
    ;
    Benni, Paul
    ;
    Berberian, John
    ;
    Berlind, Perry
    ;
    Bieryla, Allyson
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    Esparza Borges, Emma
    ;
    Bowen, Michael
    ;
    Brown, Peyton
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    Buchhave, Lars
    ;
    Burke, Christopher
    ;
    Buttu, Marco
    ;
    Cadieux, Charles
    ;
    Caldwell, Douglas
    ;
    Charbonneau, David
    ;
    Chazov, Nikita
    ;
    Chimaladinne, Sudhish
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    Collins, Kevin
    ;
    Combs, Deven
    ;
    Conti, Dennis
    ;
    Crouzet, Nicolas
    ;
    Leon, Jerome de
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    Deljookorani, Shila
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    Diamond, Brendan
    ;
    Doyon, René
    ;
    Dragomir, Diana
    ;
    Dransfield, Georgina
    ;
    Essack, Zahra
    ;
    Evans, Phil
    ;
    Fukui, Akihiko
    ;
    Gan, Tianjun
    ;
    Esquerdo, Gilbert
    ;
    Gillon, Michaël
    ;
    Girardin, Eric
    ;
    Guerra, Pere
    ;
    Guillot, Tristan
    ;
    Habich, Eleanor
    ;
    Henriksen, Andreea
    ;
    Hoch, Nora
    ;
    Isogai, Keisuke
    ;
    Jehin, Emmanuël
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    Jensen, Eric
    ;
    Johnson, Marshall
    ;
    Livingston, John
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    Kielkopf, John
    ;
    Kim, Kingsley
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    Kawauchi, Kiyoe
    ;
    Krushinsky, Vadim
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    Kunzle, Veronica
    ;
    Laloum, Didier
    ;
    Leger, Dominic
    ;
    Lewin, Pablo
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    Mallia, Franco
    ;
    Massey, Bob
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    Mori, Mayuko
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    McLeod, Kim
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    Mékarnia, Djamel
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    Mireles, Ismael
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    Mishevskiy, Nikolay
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    Tamura, Motohide
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    Murgas, Felipe
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    Narita, Norio
    ;
    Naves, Ramon
    ;
    Nelson, Peter
    ;
    Osborn, Hugh
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    Palle, Enric
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    Parviainen, Hannu
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    Plavchan, Peter
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    Pozuelos, Francisco
    ;
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    Relles, Howard
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    Rodríguez López, Cristina
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    Quinn, Samuel
    ;
    Schmider, Francois
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    Schlieder, Joshua
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    Schwarz, Richard
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    Shporer, Avi
    ;
    Sibbald, Laurie
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    Srdoc, Gregor
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    Stibbards, Caitlin
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    Stickler, Hannah
    ;
    Suarez, Olga
    ;
    Stockdale, Chris
    ;
    Tan, Thiam
    ;
    Terada, Yuka
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    Triaud, Amaury
    ;
    Tronsgaard, Rene
    ;
    Waalkes, William
    ;
    Wang, Gavin
    ;
    Watanabe, Noriharu
    ;
    Wenceslas, Marie
    ;
    Wingham, Geof
    ;
    Wittrock, Justin
    ;
    Ziegler, Carl
    Astronomers do not have a complete picture of the effects of wide-binary companions (semimajor axes greater than 100 au) on the formation and evolution of exoplanets. We investigate these effects using new data from Gaia Early Data Release 3 and the Transiting Exoplanet Survey Satellite mission to characterize wide-binary systems with transiting exoplanets. We identify a sample of 67 systems of transiting exoplanet candidates (with well-determined, edge-on orbital inclinations) that reside in wide visual binary systems. We derive limits on orbital parameters for the wide-binary systems and measure the minimum difference in orbital inclination between the binary and planet orbits. We determine that there is statistically significant difference in the inclination distribution of wide-binary systems with transiting planets compared to a control sample, with the probability that the two distributions are the same being 0.0037. This implies that there is an overabundance of planets in binary systems whose orbits are aligned with those of the binary. The overabundance of aligned systems appears to primarily have semimajor axes less than 700 au. We investigate some effects that could cause the alignment and conclude that a torque caused by a misaligned binary companion on the protoplanetary disk is the most promising explanation.
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    Publication
    Rubin observatory LSST transients and variable stars roadmap
    (IOP Publishing, 2023) ;
    Hambleton, Kelly
    ;
    Bianco, Federica
    ;
    Street, Rachel
    ;
    Bell, Keaton
    ;
    Buckley, David
    ;
    Graham, Melissa
    ;
    Hernitschek, Nina
    ;
    Lund, Michael
    ;
    Mason, Elena
    ;
    Pepper, Joshua
    ;
    Prša, Andrej
    ;
    Raiteri, Claudia
    ;
    Szabó, Róbert
    ;
    Szkody, Paula
    ;
    Andreoni, Igor
    ;
    Antoniucci, Simone
    ;
    Balmaverde, Barbara
    ;
    Bellm, Eric
    ;
    Bonito, Rosaria
    ;
    Bono, Giuseppe
    ;
    Botticella, Maria Teresa
    ;
    Brocato, Enzo
    ;
    Bučar Bricman, Katja
    ;
    Cappellaro, Enrico
    ;
    Carnerero, Maria
    ;
    Chornock, Ryan
    ;
    Clarke, Riley
    ;
    Cowperthwaite, Phil
    ;
    Cucchiara, Antonino
    ;
    D’Ammando, Filippo
    ;
    Dage, Kristen
    ;
    Dall’Ora, Massimo
    ;
    Davenport, James
    ;
    de Martino, Domitilla
    ;
    de Somma, Giulia
    ;
    Di Criscienzo, Marcella
    ;
    Di Stefano, Rosanne
    ;
    Drout, Maria
    ;
    Fabrizio, Michele
    ;
    Fiorentino, Giuliana
    ;
    Gandhi, Poshak
    ;
    Garofalo, Alessia
    ;
    Giannini, Teresa
    ;
    Gomboc, Andreja
    ;
    Greggio, Laura
    ;
    Hartigan, Patrick
    ;
    Hundertmark, Markus
    ;
    Johnson, Elizabeth
    ;
    Johnson, Michael
    ;
    Jurkic, Tomislav
    ;
    Khakpash, Somayeh
    ;
    Leccia, Silvio
    ;
    Li, Xiaolong
    ;
    Magurno, Davide
    ;
    Malanchev, Konstantin
    ;
    Marconi, Marcella
    ;
    Margutti, Raffaella
    ;
    Marinoni, Silvia
    ;
    Mauron, Nicolas
    ;
    Molinaro, Roberto
    ;
    Möller, Anais
    ;
    Moniez, Marc
    ;
    Muraveva, Tatiana
    ;
    Musella, Ilaria
    ;
    Ngeow, Chow-Choong
    ;
    Pastorello, Andrea
    ;
    Petrecca, Vincenzo
    ;
    Piranomonte, Silvia
    ;
    Ragosta, Fabio
    ;
    Reguitti, Andrea
    ;
    Righi, Chiara
    ;
    Ripepi, Vincenzo
    ;
    Rivera Sandoval, Liliana
    ;
    Stassun, Keivan
    ;
    Stroh, Michael
    ;
    Terreran, Giacomo
    ;
    Trimble, Virginia
    ;
    Tsapras, Yiannis
    ;
    van Velzen, Sjoert
    ;
    Venuti, Laura
    ;
    Vink, Jorick
    The Vera C. Rubin Legacy Survey of Space and Time (LSST) holds the potential to revolutionize time domain astrophysics, reaching completely unexplored areas of the Universe and mapping variability time scales from minutes to a decade. To prepare to maximize the potential of the Rubin LSST data for the exploration of the transient and variable Universe, one of the four pillars of Rubin LSST science, the Transient and Variable Stars Science Collaboration, one of the eight Rubin LSST Science Collaborations, has identified research areas of interest and requirements, and paths to enable them. While our roadmap is ever-evolving, this document represents a snapshot of our plans and preparatory work in the final years and months leading up to the survey’s first light.
  • Publication
    TOI-1431b/MASCARA-5b: A highly irradiated Ultrahot Jupiter orbiting one of the hottest and brightest known exoplanet host stars
    (IOP Publishing, 2021) ;
    Addison, Brett
    ;
    Knudstrup, Emil
    ;
    Wong, Ian
    ;
    Hébrard, Guillaume
    ;
    Dorval, Patrick
    ;
    Snellen, Ignas
    ;
    Albrecht, Simon
    ;
    Bello-Arufe, Aaron
    ;
    Almenara, Jose-Manuel
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    Boisse, Isabelle
    ;
    Bonfils, Xavier
    ;
    Dalal, Shweta
    ;
    Demangeon, Olivier
    ;
    Hoyer, Sergio
    ;
    Kiefer, Flavien
    ;
    Santos, N. C.
    ;
    Nowak, Grzegorz
    ;
    Luque, Rafael
    ;
    Stangret, Monika
    ;
    Palle, Enric
    ;
    Tronsgaard, René
    ;
    Antoci, Victoria
    ;
    Buchhave, Lars A.
    ;
    Günther, Maximilian N.
    ;
    Daylan, Tansu
    ;
    Murgas, Felipe
    ;
    Parviainen, Hannu
    ;
    Esparza-Borges, Emma
    ;
    Crouzet, Nicolas
    ;
    Narita, Norio
    ;
    Fukui, Akihiko
    ;
    Kawauchi, Kiyoe
    ;
    Watanabe, Noriharu
    ;
    Johnson, Marshall
    ;
    Otten, Gilles
    ;
    Jan-Talens, Geert
    ;
    Cabot, Samuel
    ;
    Fischer, Debra
    ;
    Grundahl, Frank
    ;
    Fredslun-Andersen, Mads
    ;
    Jessen-Hansen, Jens
    ;
    Pallé, Pere
    ;
    Shporer, Avi
    ;
    Ciardi, David
    ;
    Clark, Jake
    ;
    Wittenmyer, Robert
    ;
    Wright, Duncan
    ;
    Horner, Jonathan
    ;
    Collins, Karen
    ;
    Jensen, Eric
    ;
    Kielkopf, John
    ;
    Schwarz, Richard
    ;
    Srdoc, Gregor
    ;
    Yilmaz, Mesut
    ;
    Senavci, Hakan
    ;
    Diamond, Brendan
    ;
    Harbeck, Daniel
    ;
    Komacek, Thaddeus
    ;
    Smith, Jeffrey
    ;
    Wang, Songhu
    ;
    Eastman, Jason
    ;
    Stassun, Keivan
    ;
    Latham, David
    ;
    Vanderspek, Roland
    ;
    Seager, Sara
    ;
    Winn, Joshua
    ;
    Jenkins, Jon
    ;
    Louie, Dana
    ;
    Bouma, Luke
    ;
    Twicken, Joseph
    ;
    Levine, Alan
    ;
    McLean, Brian
    We present the discovery of a highly irradiated and moderately inflated ultrahot Jupiter, TOI-1431b/MASCARA5 b (HD 201033b), first detected by NASA’s Transiting Exoplanet Survey Satellite mission (TESS) and the Multisite All-Sky Camera (MASCARA). The signal was established to be of planetary origin through radial velocity measurements obtained using SONG, SOPHIE, FIES, NRES, and EXPRES, which show a reflex motion of K = 294.1 ± 1.1 m s−1. A joint analysis of the TESS and ground-based photometry and radial velocity measurements reveals that TOI-1431b has a mass of Mp = 3.12 ± 0.18 MJ (990 ± 60 M⊕), an inflated radius of Rp = 1.49 ± 0.05 RJ (16.7 ± 0.6 R⊕), and an orbital period of P = 2.650237 ± 0.000003 days. Analysis of the spectral energy distribution of the host star reveals that the planet orbits a bright (V = 8.049 mag) and young ( -+ 0.29 0.19 0.32 Gyr) Am type star with = -+ Teff 7690 250 400 K, resulting in a highly irradiated planet with an incident flux of á ñ= ´ - + F 7.24 0.64 0.68 109 erg s−1 cm−2 ( - + 5300 470 SÅ 500 ) and an equilibrium temperature of Teq = 2370 ± 70 K. TESS photometry also reveals a secondary eclipse with a depth of - + 127 5 4 ppm as well as the full phase curve of the planet’s thermal emission in the red-optical. This has allowed us to measure the dayside and nightside temperature of its atmosphere as Tday = 3004 ± 64 K and Tnight = 2583 ± 63 K, the second hottest measured nightside temperature. The planet’s low day/night temperature contrast (∼420 K) suggests very efficient heat transport between the dayside and nightside hemispheres. Given the host star brightness and estimated secondary eclipse depth of ∼1000 ppm in the K band, the secondary eclipse is potentially detectable at near-IR wavelengths with ground-based facilities, and the planet is ideal for intensive atmospheric characterization through transmission and emission spectroscopy from space missions such as the James Webb Space Telescope and the Atmospheric Remote-sensing Infrared Exoplanet Large-survey.