A Framework for Relative Biosignature Yields from Future Direct Imaging Missions
arXiv:2010.13762 · doi:10.3847/1538-4357/abc556
Abstract
Future exoplanet direct imaging missions, such as HabEx and LUVOIR, will select target stars to maximize the number of Earth-like exoplanets that can have their atmospheric compositions characterized. Because one of these missions' aims is to detect biosignatures, they should also consider the expected biosignature yield of planets around these stars. In this work, we develop a method of computing relative biosignature yields among potential target stars, given a model of habitability and biosignature genesis, and using a star's habitability history. As an illustration and first application of this method, we use MESA stellar models to calculate the time evolution of the habitable zone, and examine three simple models for biosignature genesis to calculate the relative biosignature yield for different stars. We find that the relative merits of K stars versus F stars depend sensitively on model choice. In particular, use of the present-day habitable zone as a proxy for biosignature detectability favors young, luminous stars lacking the potential for long-term habitability. Biosignature yields are also sensitive to whether life can arise on Cold Start exoplanets that enter the habitable zone after formation, an open question deserving of more attention. Using the case study of biosignature yields calculated for Cygni and 55 Cancri, we find that robust mission design and target selection for HabEx and LUVOIR depends on: choosing a specific model of biosignature appearance with time; the terrestrial planet occurrence rate as a function of orbital separation; precise knowledge of stellar properties; and accurate stellar evolutionary histories.
References in corpus (10)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- Improved Age Estimation for Solar-Type Dwarfs Using Activity-Rotation Diagnostics
- Constraints on Climate and Habitability for Earth-like Exoplanets Determined from a General Circulation Model
- A Statistical Comparative Planetology Approach to the Hunt for Habitable Exoplanets and Life Beyond the Solar System
- Chemical Evolution in the Milky Way: Rotation-based ages for APOGEE-Kepler cool dwarf stars
- Detection of Solar-Like Oscillations, Observational Constraints, and Stellar Models for Cyg, the Brightest Star Observed by the {\it Kepler} Mission
- Evolution of the habitable zone of low-mass stars. Detailed stellar models and analytical relationships for different masses and chemical compositions
- A Flexible Bayesian Framework for Assessing Habitability with Joint Observational and Model Constraints
- Expanding the Catalog: Considering the Importance of Carbon, Magnesium, and Neon in the Evolution of Stars and Habitable Zones
Cited by in corpus (5)
- The Case for Technosignatures: Why They May Be Abundant, Long-lived, Highly Detectable, and Unambiguous
- The Abundance of Belatedly Habitable Planets and Ambiguities in Definitions of the Continuously Habitable Zone
- Potential Habitability as a Stellar Property: Effects of Model Uncertainties and Measurement Precision
- HZ_evolution: A Package to Calculate Habitable Histories
- Setting the Stage: The Early History of the Solar System