Imaging nearby, habitable-zone planets with the Large Binocular Telescope Interferometer
暂无分享,去创建一个
J. Leisenring | S. P. Worden | M. Kasper | D. Apai | M. Marley | P. Klupar | S. Ertel | W. Hoffmann | J. Males | E. Spalding | K. Wagner | V. Faramaz | S. Sallum | J. Dietrich | H. Rousseau | D. Defrére | J. Stone | Joshua A. Eisner
[1] J. Leisenring,et al. MIRAC-5: a ground-based mid-IR instrument with the potential to detect ammonia in gas giants , 2022, Astronomical Telescopes + Instrumentation.
[2] S. Ertel,et al. Unveiling exozodiacal light , 2022, Physics Today.
[3] J. Leisenring,et al. High-contrast Imaging with Fizeau Interferometry: the Case of Altair , 2022, The Astronomical Journal.
[4] K. Kratter,et al. Impact of binary stars on planet statistics – I. Planet occurrence rates and trends with stellar mass , 2021, Monthly Notices of the Royal Astronomical Society.
[5] Jason J. Wang,et al. Constraining the Orbit and Mass of epsilon Eridani b with Radial Velocities, Hipparcos IAD-Gaia DR2 Astrometry, and Multiepoch Vortex Coronagraphy Upper Limits , 2021, The Astronomical Journal.
[6] Olivier Guyon,et al. Imaging low-mass planets within the habitable zones of nearby stars with ground-based mid-infrared imaging , 2021, Optical Engineering + Applications.
[7] R. Siebenmorgen,et al. High-contrast imaging at ten microns: A search for exoplanets around Eps Indi A, Eps Eri, Tau Ceti, Sirius A, and Sirius B , 2021, Astronomy & Astrophysics.
[8] J. Leisenring,et al. The HOSTS Survey: Evidence for an Extended Dust Disk and Constraints on the Presence of Giant Planets in the Habitable Zone of β Leo , 2021, The Astronomical Journal.
[9] R. Siebenmorgen,et al. Imaging low-mass planets within the habitable zone of α Centauri , 2021, Nature Communications.
[10] D. Apai,et al. Bioverse: A Simulation Framework to Assess the Statistical Power of Future Biosignature Surveys , 2021, The Astronomical Journal.
[11] Julien H. Girard,et al. Large Interferometer For Exoplanets (LIFE). I. Improved exoplanet detection yield estimates for a large mid-infrared space-interferometer mission , 2021, Astronomy & Astrophysics.
[12] Armando Riccardi,et al. Bringing soul on sky , 2021, 2101.07091.
[13] William C. Danchi,et al. Review and scientific prospects of high-contrast optical stellar interferometry , 2020, Astronomical Telescopes + Instrumentation.
[14] Amali Vaz,et al. Overview and prospects of the LBTI beyond the completed HOSTS survey , 2020, Astronomical Telescopes + Instrumentation.
[15] J. Eisner,et al. ELT Imaging of MWC 297 from the 23 m LBTI: Complex Disk Structure and a Companion Candidate , 2020, The Astronomical Journal.
[16] D. Apai,et al. An Integrated Analysis with Predictions on the Architecture of the τ Ceti Planetary System, Including a Habitable Zone Planet , 2020, The Astronomical Journal.
[17] Ewan S. Douglas,et al. Implementing multiwavelength fringe tracking for the Large Binocular Telescope Interferometer’s phase sensor, PHASECam , 2020 .
[18] D. Apai,et al. Testing Earthlike Atmospheric Evolution on Exo-Earths through Oxygen Absorption: Required Sample Sizes and the Advantage of Age-based Target Selection , 2020, The Astrophysical Journal.
[19] J. Leisenring,et al. The HOSTS Survey for Exozodiacal Dust: Observational Results from the Complete Survey , 2020, The Astronomical Journal.
[20] Amali Vaz,et al. Status of commissioning stabilized infrared Fizeau interferometry with LBTI , 2019, Optical Engineering + Applications.
[21] Bertrand Mennesson,et al. ExoEarth yield landscape for future direct imaging space telescopes , 2019, Journal of Astronomical Telescopes, Instruments, and Systems.
[22] Olivier Guyon,et al. The Habitable Exoplanet Observatory (HabEx) , 2018, Astronomical Telescopes + Instrumentation.
[23] B. Mennesson,et al. The HOSTS survey for exo-zodiacal dust: preliminary results and future prospects , 2018, Astronomical Telescopes + Instrumentation.
[24] S. Ertel,et al. A two-band approach to nλ phase error corrections with LBTI's PHASECam , 2018, Astronomical Telescopes + Instrumentation.
[25] Phil Hinz,et al. Towards controlled Fizeau observations with the Large Binocular Telescope , 2018, Astronomical Telescopes + Instrumentation.
[26] E. Serabyn,et al. The HOSTS Survey—Exozodiacal Dust Measurements for 30 Stars , 2018, 1803.11265.
[27] D. Apai,et al. A comprehensive understanding of planet formation is required for assessing planetary habitability and for the search for life , 2018, 1803.08682.
[28] P. Higgs,et al. Constraining the Time Interval for the Origin of Life on Earth. , 2018, Astrobiology.
[29] E. Serabyn,et al. The path towards high-contrast imaging with the VLTI: the Hi-5 project , 2018, Experimental Astronomy.
[30] R. Siebenmorgen,et al. NEAR: Low-mass Planets in α Cen with VISIR , 2017 .
[31] Peter Tuthill,et al. Improved Constraints on the Disk around MWC 349A from the 23 m LBTI , 2017, 1706.05010.
[32] A. G. Davies,et al. Multi-phase volcanic resurfacing at Loki Patera on Io , 2017, Nature.
[33] Massimo Marengo,et al. The Inner 25 au Debris Distribution in the ϵ Eri System , 2017, 1703.10330.
[34] Olivier Absil,et al. Exozodiacal clouds: hot and warm dust around main sequence stars , 2017, 1703.02540.
[35] M. Skrutskie,et al. Resolving Io’s Volcanoes from a Mutual Event Observation at the Large Binocular Telescope , 2016, The Planetary Science Journal.
[36] L. Marion,et al. A near-infrared interferometric survey of debris-disc stars. V. PIONIER search for variability , 2016, 1608.05731.
[37] J.-U. Pott,et al. Simultaneous water vapor and dry air optical path length measurements and compensation with the large binocular telescope interferometer , 2016, Astronomical Telescopes + Instrumentation.
[38] O. Durney,et al. SOUL: the Single conjugated adaptive Optics Upgrade for LBT , 2016, Astronomical Telescopes + Instrumentation.
[39] B. Mennesson,et al. Overview of LBTI: a multipurpose facility for high spatial resolution observations , 2016, Astronomical Telescopes + Instrumentation.
[40] A. Skemer,et al. Accreting protoplanets in the LkCa 15 transition disk , 2015, Nature.
[41] Gerd Weigelt,et al. SPATIALLY RESOLVED M-BAND EMISSION FROM IO’S LOKI PATERA–FIZEAU IMAGING AT THE 22.8 m LBT , 2015 .
[42] E. Serabyn,et al. FIRST-LIGHT LBT NULLING INTERFEROMETRIC OBSERVATIONS: WARM EXOZODIACAL DUST RESOLVED WITHIN A FEW AU OF η Crv , 2015, 1501.04144.
[43] J. Blommaert,et al. The debris disc of solar analogue Ceti: Herschel observations and dynamical simulations of the proposed multiplanet system , 2014, Monthly Notices of the Royal Astronomical Society.
[44] J. M. Hill,et al. Co-phasing the Large Binocular Telescope: status and performance of LBTI/PHASECam , 2014, Astronomical Telescopes and Instrumentation.
[45] D. Schertl,et al. Fizeau interferometric imaging of Io volcanism with LBTI/LMIRcam , 2014, Astronomical Telescopes and Instrumentation.
[46] Bertrand Mennesson,et al. Operation and performance of the mid-infrared camera, NOMIC, on the Large Binocular Telescope , 2014, Astronomical Telescopes and Instrumentation.
[47] C. Hanot,et al. A near-infrared interferometric survey of debris-disc stars - III. First statistics based on 42 stars observed with CHARA/FLUOR , 2013, 1307.2488.
[48] K. Stapelfeldt,et al. EPSILON ERIDANI'S PLANETARY DEBRIS DISK: STRUCTURE AND DYNAMICS BASED ON SPITZER AND CALTECH SUBMILLIMETER OBSERVATORY OBSERVATIONS , 2008, 0810.4564.
[49] S. T. Ridgway,et al. A near-infrared interferometric survey of debris-disk stars , 2007, Astronomy & Astrophysics.
[50] Gordon A. H. Walker,et al. Evidence for a Long-Period Planet Orbiting ϵ Eridani , 2000, astro-ph/0009423.
[51] P. C. Keenan,et al. The Perkins catalog of revised MK types for the cooler stars , 1989 .
[52] C. A. Haniff,et al. Closure phase in high-resolution optical imaging , 1986, Nature.