The Demographics of Terrestrial Planets in the Venus Zone
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J. Head | S. Kane | P. Dalba | K. Bott | C. Unterborn | E. Schwieterman | T. Fetherolf | M. Hill | C. Ostberg | Zhexing Li
[1] S. Kane,et al. A Catalog of Habitable Zone Exoplanets , 2022, The Astronomical Journal.
[2] K. Stevenson,et al. MIRECLE: Science Yield for a Mid-infrared Explorer-class Mission to Study Nontransiting Rocky Planets Orbiting the Nearest M Stars Using Planetary Infrared Excess , 2022, The Astronomical Journal.
[3] S. Kane,et al. Mantle Degassing Lifetimes through Galactic Time and the Maximum Age Stagnant-lid Rocky Exoplanets Can Support Temperate Climates , 2022, The Astrophysical Journal Letters.
[4] Technical University of Denmark,et al. A Second Planet Transiting LTT 1445A and a Determination of the Masses of Both Worlds , 2021, The Astronomical Journal.
[5] K. Stassun,et al. TOI-2285b: A 1.7 Earth-radius Planet Near the Habitable Zone around a Nearby M Dwarf , 2021, 2110.10215.
[6] D. Ehrenreich,et al. Day–night cloud asymmetry prevents early oceans on Venus but not on Earth , 2021, Nature.
[7] M. Osorio,et al. Warm terrestrial planet with half the mass of Venus transiting a nearby star , 2021, 2108.03323.
[8] T. Barclay,et al. L 98-59: A Benchmark System of Small Planets for Future Atmospheric Characterization , 2021, The Astronomical Journal.
[9] J. Crepp,et al. California Legacy Survey. II. Occurrence of Giant Planets beyond the Ice Line , 2021, The Astrophysical Journal Supplement Series.
[10] J. Crepp,et al. The California Legacy Survey. I. A Catalog of 178 Planets from Precision Radial Velocity Monitoring of 719 Nearby Stars over Three Decades , 2021, The Astrophysical Journal Supplement Series.
[11] Julien H. Girard,et al. Direct Imaging of Exoplanets beyond the Radial Velocity Limit: Application to the HD 134987 System , 2021, The Astronomical Journal.
[12] C. Blake,et al. Target Prioritization and Observing Strategies for the NEID Earth Twin Survey , 2021, The Astronomical Journal.
[13] M. Paegert,et al. A planetary system with two transiting mini-Neptunes near the radius valley transition around the bright M dwarf TOI-776 , 2020, Astronomy & Astrophysics.
[14] P. Byrne,et al. Tesserae on Venus may preserve evidence of fluvial erosion , 2020, Nature Communications.
[15] J. Almenara,et al. Planetary system LHS 1140 revisited with ESPRESSO and TESS , 2020, Astronomy & Astrophysics.
[16] K. Stassun,et al. A super-Earth and a sub-Neptune orbiting the bright, quiet M3 dwarf TOI-1266 , 2020, Astronomy & Astrophysics.
[17] Jaime Fern'andez del R'io,et al. Array programming with NumPy , 2020, Nature.
[18] S. Kane,et al. Solar System Physics for Exoplanet Research , 2020, Publications of the Astronomical Society of the Pacific.
[19] S. Zucker,et al. Public HARPS radial velocity database corrected for systematic errors , 2020, Astronomy & Astrophysics.
[20] R. Hu,et al. O2- and CO-rich Atmospheres for Potentially Habitable Environments on TRAPPIST-1 Planets , 2019, The Astrophysical Journal.
[21] S. Dreizler,et al. RedDots: a temperate 1.5 Earth-mass planet candidate in a compact multiterrestrial planet system around GJ 1061 , 2019, Monthly Notices of the Royal Astronomical Society.
[22] Joel Nothman,et al. SciPy 1.0-Fundamental Algorithms for Scientific Computing in Python , 2019, ArXiv.
[23] R. P. Butler,et al. The CARMENES search for exoplanets around M dwarfs , 2018, Astronomy & Astrophysics.
[24] S. Kane,et al. Predicting the Yield of Potential Venus Analogs from TESS and Their Potential for Atmospheric Characterization , 2019, The Astronomical Journal.
[25] V. Meadows,et al. Observing Isotopologue Bands in Terrestrial Exoplanet Atmospheres with the James Webb Space Telescope: Implications for Identifying Past Atmospheric and Ocean Loss , 2019, The Astronomical Journal.
[26] V. Meadows,et al. The Detectability and Characterization of the TRAPPIST-1 Exoplanet Atmospheres with JWST , 2019, The Astronomical Journal.
[27] D. Dragomir,et al. Planetary system around the nearby M dwarf GJ 357 including a transiting, hot, Earth-sized planet optimal for atmospheric characterization , 2019, Astronomy & Astrophysics.
[28] B. Foley. Habitability of Earth-like Stagnant Lid Planets: Climate Evolution and Recovery from Snowball States , 2019, The Astrophysical Journal.
[29] J. Pepper,et al. TESS Habitable Zone Star Catalog , 2019, The Astrophysical Journal.
[30] C. Moutou,et al. The HARPS search for southern extra-solar planets , 2004, Astronomy & Astrophysics.
[31] R. Luger,et al. Evolved Climates and Observational Discriminants for the TRAPPIST-1 Planetary System , 2018, The Astrophysical Journal.
[32] F. Bouchy,et al. Radial velocity follow-up of GJ1132 with HARPS , 2018, Astronomy & Astrophysics.
[33] Robert T. Zellem,et al. A Framework for Prioritizing the TESS Planetary Candidates Most Amenable to Atmospheric Characterization , 2018, Publications of the Astronomical Society of the Pacific.
[34] Nikole K. Lewis,et al. Strategies for Constraining the Atmospheres of Temperate Terrestrial Planets with JWST , 2018, 1803.07983.
[35] A. Smye,et al. Carbon Cycling and Habitability of Earth-Sized Stagnant Lid Planets. , 2017, Astrobiology.
[36] Erik Petigura,et al. An asteroseismic view of the radius valley: stripped cores, not born rocky , 2017, Monthly Notices of the Royal Astronomical Society.
[37] Shiladitya DasSarma,et al. Exoplanet Biosignatures: Understanding Oxygen as a Biosignature in the Context of Its Environment , 2017, Astrobiology.
[38] K. Stapelfeldt,et al. Exoplanet Biosignatures: Observational Prospects , 2017, Astrobiology.
[39] Renyu Hu,et al. Exoplanet Biosignatures: A Review of Remotely Detectable Signs of Life , 2017, Astrobiology.
[40] Gregory F. Snyder,et al. Finding the Needles in the Haystacks: High-fidelity Models of the Modern and Archean Solar System for Simulating Exoplanet Observations , 2017, 1710.06328.
[41] Tyler Robinson,et al. Observing the Atmospheres of Known Temperate Earth-sized Planets with JWST , 2017, 1708.04239.
[42] Howard Isaacson,et al. The California-Kepler Survey. III. A Gap in the Radius Distribution of Small Planets , 2017, 1703.10375.
[43] R. P. Butler,et al. The LCES HIRES/Keck Precision Radial Velocity Exoplanet Survey , 2017, 1702.03571.
[44] David C. Catling,et al. The Cosmic Shoreline: The Evidence that Escape Determines which Planets Have Atmospheres, and what this May Mean for Proxima Centauri B , 2017, 1702.03386.
[45] D. Apai,et al. Probabilistic Constraints on the Mass and Composition of Proxima b , 2017, 1702.02542.
[46] M. Way,et al. Resolving Orbital and Climate Keys of Earth and Extraterrestrial Environments with Dynamics (ROCKE-3D) 1.0: A General Circulation Model for Simulating the Climates of Rocky Planets , 2017, 1701.02360.
[47] S. Kane,et al. ON THE ORBITAL INCLINATION OF PROXIMA CENTAURI b , 2016, 1612.02872.
[48] Christian Schwab,et al. A VERSATILE TECHNIQUE TO ENABLE SUB-MILLI-KELVIN INSTRUMENT STABILITY FOR PRECISE RADIAL VELOCITY MEASUREMENTS: TESTS WITH THE HABITABLE-ZONE PLANET FINDER , 2016, 1610.06216.
[49] Observatoire de la Côte d'Azur,et al. Gaia Data Release 1. Summary of the astrometric, photometric, and survey properties , 2016, 1609.04172.
[50] L. F. Sarmiento,et al. A terrestrial planet candidate in a temperate orbit around Proxima Centauri , 2016, Nature.
[51] D. Kipping,et al. PROBABILISTIC FORECASTING OF THE MASSES AND RADII OF OTHER WORLDS , 2016, 1603.08614.
[52] Sarah Kendrew,et al. Telling twins apart: exo-Earths and Venuses with transit spectroscopy , 2016, 1602.08277.
[53] Tilo Steinmetz,et al. State of the Field: Extreme Precision Radial Velocities , 2016, 1602.07939.
[54] Feng Tian,et al. History of water loss and atmospheric O2 buildup on rocky exoplanets near M dwarfs , 2015 .
[55] S. Kane,et al. THE CATALOG OF EARTH-LIKE EXOPLANET SURVEY TARGETS (CELESTA): A DATABASE OF HABITABLE ZONES AROUND NEARBY STARS , 2015, 1510.05666.
[56] R. Luger,et al. Extreme water loss and abiotic O2 buildup on planets throughout the habitable zones of M dwarfs. , 2014, Astrobiology.
[57] Joshua N. Winn,et al. The Occurrence and Architecture of Exoplanetary Systems , 2014, 1410.4199.
[58] E. Ford. Architectures of planetary systems and implications for their formation , 2014, Proceedings of the National Academy of Sciences.
[59] Edwin L. Turner,et al. Exoplanet orbital eccentricity: Multiplicity relation and the Solar System , 2014, Proceedings of the National Academy of Sciences.
[60] M. Riva,et al. ESPRESSO: The next European exoplanet hunter , 2014, 1401.5918.
[61] J. Head. The geologic evolution of Venus: Insights into Earth history , 2014 .
[62] Debra A. Fischer,et al. THE TWENTY-FIVE YEAR LICK PLANET SEARCH , 2013, 1310.7315.
[63] K. von Braun,et al. The NASA Exoplanet Archive: Data and Tools for Exoplanet Research , 2013, 1307.2944.
[64] Y. Abe,et al. Emergence of two types of terrestrial planet on solidification of magma ocean , 2013, Nature.
[65] Neil Rowlands,et al. The JWST Fine Guidance Sensor (FGS) and Near-Infrared Imager and Slitless Spectrograph (NIRISS) , 2012, Other Conferences.
[66] L. Arnold,et al. Transmission spectrum of Venus as a transiting exoplanet , 2011, 1112.0572.
[67] J. Papaloizou,et al. Close encounters of a rotating star with planets in parabolic orbits of varying inclination and the formation of hot Jupiters , 2011, 1106.5753.
[68] S. Tremaine,et al. THE STATISTICS OF MULTI-PLANET SYSTEMS , 2011, 1106.5403.
[69] Howard Isaacson,et al. Kepler Planet-Detection Mission: Introduction and First Results , 2010, Science.
[70] Peter Rumler,et al. Overview of the near-infrared spectrograph (NIRSpec) instrument on-board the James Webb Space Telescope (JWST) , 2007, SPIE Optical Engineering + Applications.
[71] Nuno C. Santos,et al. Extrasolar Planets: Statistical properties of exoplanets , 2007 .
[72] R. P. Butler,et al. Catalog of Nearby Exoplanets , 2006, astro-ph/0607493.
[73] David Wright,et al. The JWST MIRI instrument concept , 2004, SPIE Astronomical Telescopes + Instrumentation.
[74] Donald M. Hunten,et al. Venus II--geology, geophysics, atmosphere, and solar wind environment , 1997 .
[75] J. Kasting,et al. Habitable zones around main sequence stars. , 1993, Icarus.
[76] W. M. Kaula,et al. Venus Tectonics: Initial Analysis from Magellan , 1991, Science.
[77] J. Kasting,et al. Runaway and moist greenhouse atmospheres and the evolution of Earth and Venus. , 1988, Icarus.
[78] J. Head,et al. Evidence for Divergent Plate-Boundary Characteristics and Crustal Spreading on Venus , 1987, Science.
[79] A. Watson,et al. Venus Was Wet: A Measurement of the Ratio of Deuterium to Hydrogen , 1982, Science.
[80] J. Head,et al. Tectonic evolution of the terrestrial planets. , 1981, Science.