Signatures of impact-driven atmospheric loss in large ensembles of exoplanets
arXiv:2208.05989 · doi:10.3847/1538-4357/ac8a97
Abstract
The results of large-scale exoplanet transit surveys indicate that the distribution of small planet radii is likely sculpted by atmospheric loss. Several possible physical mechanisms exist for this loss of primordial atmospheres, each of which produces a different set of observational signatures. In this study, we investigate the impact-driven mode of atmosphere loss via N-body simulations. We compare the results from giant impacts, at a demographic level, to results from another commonly-invoked method of atmosphere loss: photoevaporation. Applying two different loss prescriptions to the same sets of planets, we then examine the resulting distributions of planets with retained primordial atmospheres. As a result of this comparison, we identify two new pathways toward discerning the dominant atmospheric loss mechanism at work. Both of these pathways involve using transit multiplicity as a diagnostic, in examining the results of follow-up atmospheric and radial velocity surveys.
17 pages, 10 figures, Submitted to ApJ
References in corpus (20)
- Array Programming with NumPy
- The James Webb Space Telescope
- New evolutionary models for pre-main sequence and main sequence low-mass stars down to the hydrogen-burning limit
- DHP Framework: Digital Health Passports Using Blockchain -- Use case on international tourism during the COVID-19 pandemic
- Growth Model Interpretation of Planet Size Distribution
- Six transiting planets and a chain of Laplace resonances in TOI-178
- The Gaia-Kepler Stellar Properties Catalog. II. Planet Radius Demographics as a Function of Stellar Mass and Age
- Kepler Multi-Planet Systems Exhibit Unexpected Intra-system Uniformity in Mass and Radius
- Trends in Atmospheric Properties of Neptune-Size Exoplanets
- A giant impact as the likely origin of different twins in the Kepler-107 exoplanet system
- Kepler-445, Kepler-446 and the Occurrence of Compact Multiples Orbiting Mid-M Dwarf Stars
- Architectures of Exoplanetary Systems. III: Eccentricity and Mutual Inclination Distributions of AMD-stable Planetary Systems
- Accounting for Incompleteness due to Transit Multiplicity in Kepler Planet Occurrence Rates
- The statistical mechanics of planet orbits
- An information theoretic framework for classifying exoplanetary system architectures
- The metallicity distribution and hot Jupiter rate of the Kepler field: Hectochelle High-resolution spectroscopy for 776 Kepler target stars
- Forming Diverse Super-Earth Systems in Situ
- Peas in a Pod? Radius correlations in Kepler multi-planet systems
- Do planets remember how they formed?
- Evidence for a Non-Dichotomous Solution to the Kepler Dichotomy: Mutual Inclinations of Kepler Planetary Systems from Transit Duration Variations
Cited by in corpus (6)
- The Exoplanet Radius Valley from Gas-driven Planet Migration and Breaking of Resonant Chains
- Super-Earths and Earth-like Exoplanets
- The open-source sunbather code: modeling escaping planetary atmospheres and their transit spectra
- Formation of super-Earths and mini-Neptunes from rings of planetesimals
- Evidence that Planets in the Radius Gap Do Not Resemble Their Neighbors
- Variations in the Radius Distribution of Single- and Compact Multiple-transiting Planets