Following up the Kepler field: Masses of Targets for transit timing and atmospheric characterization
arXiv:2101.01202 · doi:10.3847/1538-3881/abd93f
Abstract
We identify a set of planetary systems observed by Kepler that merit transit timing variation (TTV) analysis given the orbital periods of transiting planets, the uncertainties for their transit times and the number of transits observed during the Kepler mission. We confirm the planetary nature of 4 KOIs within multicandidate systems. We forward model each of the planetary systems identified to determine which systems are likely to yield mass constraints that may be significantly improved upon with follow-up transit observations. We find projected TTVs diverge by more than 90 minutes after 6000 days in 27 systems, including 22 planets with orbital periods exceeding 25 days. Such targets would benefit the most from additional transit timing data. TTV follow-up could push exoplanet characterization to lower masses, at greater orbital periods and at cooler equilibrium temperatures than is currently possible from the Kepler dataset alone. Combining TTVs and recently revised stellar parameters, we characterize an ensemble of homogeneously selected planets and identify planets in the Kepler field with large enough estimated transmission annuli for atmospheric characterization with JWST.
70 pages, 33 figures
References in corpus (17)
- Most 1.6 Earth-Radius Planets are not Rocky
- The Mass of KOI-94d and a Relation for Planet Radius, Mass, and Incident Flux
- A resonant chain of four transiting, sub-Neptune planets
- Alignment of the stellar spin with the orbits of a three-planet system
- Long-term tidal evolution of short-period planets with companions
- Trends in Atmospheric Properties of Neptune-Size Exoplanets
- The mass of the Mars-sized exoplanet Kepler-138 b from transit timing
- The Precision of Mass Measurements Required for Robust Atmospheric Characterization of Transiting Exoplanets
- The Featureless Transmission Spectra of Two Super-Puff Planets
- Planet Hunters VII. Discovery of a New Low-Mass, Low-Density Planet (PH3 c) Orbiting Kepler-289 with Mass Measurements of Two Additional Planets (PH3 b and d)
- The Compositional Diversity of Low-Mass Exoplanets
- The Effect of Conjunctions on the Transit Timing Variations of Exoplanets
- HARPS-N radial velocities confirm the low densities of the Kepler-9 planets
- Secular Effects of Tidal Damping in Compact Planetary Systems
- A Featureless Infrared Transmission Spectrum for the Super-Puff Planet Kepler-79d
- Two Super-Earths in the 3:2 MMR around KOI-1599
- The origin and 9:7 MMR dynamics of the Kepler-29 system
Cited by in corpus (14)
- ExoMiner: A Highly Accurate and Explainable Deep Learning Classifier that Validates 301 New Exoplanets
- Evidence for the volatile-rich composition of a 1.5- planet
- The PLATO field selection process. II. Characterization of LOPS2, the first long-pointing field
- Dynamics and Origins of the Near-Resonant Kepler Planets
- TESS Observations of Kepler systems with Transit Timing Variations
- Updated Catalog of Kepler Planet Candidates: Focus on Accuracy and Orbital Periods
- Multiplicity Boost Of Transit Signal Classifiers: Validation of 69 New Exoplanets Using The Multiplicity Boost of ExoMiner
- Photodynamical analysis of the nearly resonant planetary system WASP-148: Accurate transit-timing variations and mutual orbital inclination
- Constraining the Densities of the Three Kepler-289 Planets with Transit Timing Variations
- Physical Properties and Impact Parameter Variations of Kepler Planets from Analytic Light Curve Modeling
- An Accurate 3D Analytic Model for Exoplanetary Photometry, Radial Velocity, and Astrometry
- exoMMR: a New Python Package to Confirm and Characterize Mean Motion Resonances
- Confirming Resonance in Three Transiting Systems
- An Independent Search for Small Long-period Planets in Kepler Data I: Detection Pipeline