English

Superhabitable Planets Around Mid-Type K Dwarf Stars Enhance Simulated JWST Observability and Surface Habitability

Earth and Planetary Astrophysics 2025-01-07 v1

Abstract

In our search for life beyond the Solar System, certain planetary bodies may be more conducive to life than Earth. However, the observability of these `superhabitable' planets in the habitable zones around K dwarf stars has not been fully modeled. This study addresses this gap by modeling the atmospheres of superhabitable exoplanets. We employed the 1D model Atmos\texttt{Atmos} to define the superhabitable parameter space, POSEIDON\texttt{POSEIDON} to calculate synthetic transmission spectra, and PandExo\texttt{PandExo} to simulate JWST\text{JWST} observations. Our results indicate that planets orbiting mid-type K dwarfs, receiving 80%80\% of Earth's solar flux, are optimal for life. These planets sustain temperate surfaces with moderate CO2CO_2 levels, unlike those receiving 60%60\% flux, where necessarily higher CO2CO_2 levels could hinder biosphere development. Moreover, they are easier to observe, requiring significantly fewer transits for biosignature detection compared to Earth-like planets around Sun-like stars. For instance, detecting biosignature pairs like oxygen and methane from 3030 parsecs would require 150150 transits (4343 years) for a superhabitable planet, versus over 17001700 transits (1700\sim 1700 years) for Earth-like planets. While such observation times lie outside of JWST\text{JWST} mission timescales, our study underscores the necessity of next-generation telescopes and provides valuable targets for future observations with, for example, the ELT\text{ELT}.

Keywords

Cite

@article{arxiv.2501.03214,
  title  = {Superhabitable Planets Around Mid-Type K Dwarf Stars Enhance Simulated JWST Observability and Surface Habitability},
  author = {Iva Vilović and Jayesh Goyal and René Heller and Fanny Marie von Schauenburg},
  journal= {arXiv preprint arXiv:2501.03214},
  year   = {2025}
}