English

Characterizing transiting exoplanet atmospheres with JWST

Earth and Planetary Astrophysics 2016-01-27 v1

Abstract

We explore how well James Webb Space Telescope (JWST) spectra will likely constrain bulk atmospheric properties of transiting exoplanets. We start by modeling the atmospheres of archetypal hot Jupiter, warm Neptune, warm sub-Neptune, and cool super-Earth planets with clear, cloudy, or high mean molecular weight atmospheres. Next we simulate the λ=111\lambda = 1 - 11 μ\mum transmission and emission spectra of these systems for several JWST instrument modes for single transit and eclipse events. We then perform retrievals to determine how well temperatures and molecular mixing ratios (CH4_4, CO, CO2_2, H2_2O, NH3_3) can be constrained. We find that λ=12.5\lambda = 1 - 2.5 μ\mum transmission spectra will often constrain the major molecular constituents of clear solar composition atmospheres well. Cloudy or high mean molecular weight atmospheres will often require full 1111 - 11 μ\mum spectra for good constraints, and emission data may be more useful in cases of sufficiently high FpF_p and high Fp/FF_p/F_*. Strong temperature inversions in the solar composition hot Jupiter atmosphere should be detectable with 12.5+1 - 2.5+ μ\mum emission spectra, and 15+1 - 5+ μ\mum emission spectra will constrain the temperature-pressure profiles of warm planets. Transmission spectra over 15+1 - 5+ μ\mum will constrain [Fe/H] values to better than 0.5 dex for the clear atmospheres of the hot and warm planets studied. Carbon-to-oxygen ratios can be constrained to better than a factor of 2 in some systems. We expect that these results will provide useful predictions of the scientific value of single event JWST spectra until its on-orbit performance is known.

Keywords

Cite

@article{arxiv.1511.05528,
  title  = {Characterizing transiting exoplanet atmospheres with JWST},
  author = {Thomas P. Greene and Michael R. Line and Cezar Montero and Jonathan J. Fortney and Jacob Lustig-Yeager and Kyle Luther},
  journal= {arXiv preprint arXiv:1511.05528},
  year   = {2016}
}

Comments

Accepted by The Astrophysical Journal (ApJ); 24 pages, 15 figures

R2 v1 2026-06-22T11:47:46.297Z