Planet-Planet Occultations in TRAPPIST-1 and Other Exoplanet Systems
arXiv:1711.05739 · doi:10.3847/1538-4357/aa9c43
Abstract
We explore the occurrence and detectability of planet-planet occultations (PPOs) in exoplanet systems. These are events during which a planet occults the disk of another planet in the same system, imparting a small photometric signal as its thermal or reflected light is blocked. We focus on the planets in TRAPPIST-1, whose orbital planes we show are aligned to within 0.3 degrees at 90% confidence. We present a photodynamical model for predicting and computing PPOs in TRAPPIST-1 and other systems for various assumptions of the planets' atmospheric states. When marginalizing over the uncertainties on all orbital parameters, we find that the rate of PPOs in TRAPPIST-1 is about 1.4 per day. We investigate the prospects for detection of these events with the James Webb Space Telescope, finding that ~10-20 occultations per year of b and c should be above the noise level at 12-15 microns. Joint modeling of several of these PPOs could lead to a robust detection. Alternatively, observations with the proposed Origins Space Telescope should be able to detect individual PPOs at high signal-to-noise. We show how PPOs can be used to break transit timing variation degeneracies, imposing strong constraints on the eccentricities and masses of the planets, as well as to constrain the longitudes of nodes and thus the complete three-dimensional structure of the system. We further show how modeling of these events can be used to reveal a planet's day/night temperature contrast and construct crude surface maps. We make our photodynamical code available on github.
36 pages, 25 figures. Accepted to ApJ. Multi-purpose photodynamical code available at github.com/rodluger/planetplanet
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Cited by in corpus (25)
- The Detectability and Characterization of the TRAPPIST-1 Exoplanet Atmospheres with JWST
- Early 2017 observations of TRAPPIST-1 with
- A review of possible planetary atmospheres in the TRAPPIST-1 system
- No Evidence for Lunar Transit in New Analysis of Hubble Space Telescope Observations of the Kepler-1625 System
- TRAPPIST-1: Global Results of the Spitzer Exploration Science Program {\it Red Worlds}
- Combined analysis of the 12.8 and 15 JWST/MIRI eclipse observations of TRAPPIST-1 b
- Mapping stellar surfaces II: An interpretable Gaussian process model for light curves
- Near-infrared transmission spectrum of TRAPPIST-1 h using Hubble WFC3 G141 observations
- Large Exomoons unlikely around Kepler-1625 b and Kepler-1708 b
- Habitable planet formation around low-mass stars: Rapid accretion, rapid debris removal and the essential contribution of external giants
- Analytic Light Curves in Reflected Light: Phase Curves, Occultations, and Non-Lambertian Scattering for Spherical Planets and Moons
- Pandora: A fast open-source exomoon transit detection algorithm
- Fast and Precise Light Curve Model for Transiting Exoplanets with Rings
- A Radio Technosignature Search of TRAPPIST-1 with the Allen Telescope Array
- EDEN Survey: Small Transiting Planet Detection Limits and Constraints on the Occurrence Rates for Late M Dwarfs within 15 pc
- Analytic Light Curve for Mutual Transits of Two Bodies Across a Limb-darkened Star
- Phase Modeling of the TRAPPIST-1 Planetary Atmospheres
- The "Drake equation" of exomoons -- a cascade of formation, stability and detection
- Ohmic heating in the upper atmosphere of hot exoplanets The influence of a time-varying magnetic field
- Estimation of Planetary Photometric Emissions for Extremely Close-in Exoplanets
- A differentiable N-body code for transit timing and dynamical modelling -- II. Photodynamics
- Orbital obliquity sampling in the Kepler-20 system using the 3D animation software Blender
- SPECULOOS: five years hunting terrestrial planets around ultra-cool dwarfs
- The CHEOPS view of HD 95338b: refined transit parameters, and a search for exomoons
- Photometric Search for Exomoons by using Convolutional Neural Networks