English

Continuous Habitable Zones: Using Bayesian Methods to Prioritize Characterization of Potentially Habitable Worlds

Earth and Planetary Astrophysics 2022-04-27 v1 Solar and Stellar Astrophysics

Abstract

The number of potentially habitable planets continues to increase, but we lack the time and resources to characterize all of them. With \sim30 known potentially habitable planets and an ever-growing number of candidate and confirmed planets, a robust statistical framework for prioritizing characterization of these planets is desirable. Using the \sim2 Gy it took life on Earth to make a detectable impact on the atmosphere as a benchmark, we use a Bayesian statistical method to determine the probability that a given radius around a star has been continuously habitable for 2 Gy. We perform this analysis on 9 potentially habitable exoplanets with planetary radii <<1.8 R_\oplus and/or planetary masses <<10 M_\oplus around 9 low-mass host stars (\sim0.5-1.1 M_\odot) with measured stellar mass and metallicity, as well as Venus, Earth, and Mars. Ages for the host stars are generated by the analysis. The technique is also used to provide age estimates for 2768 low-mass stars (0.5-1.3 M_\odot) in the TESS Continuous Viewing Zones.

Keywords

Cite

@article{arxiv.2203.06259,
  title  = {Continuous Habitable Zones: Using Bayesian Methods to Prioritize Characterization of Potentially Habitable Worlds},
  author = {Austin Ware and Patrick Young and Amanda Truitt and Alexander Spacek},
  journal= {arXiv preprint arXiv:2203.06259},
  year   = {2022}
}

Comments

17 pages, 4 figures, 5 tables, accepted to ApJ