Can Carbon Fractionation Provide Evidence for Aerial Biospheres in the Atmospheres of Temperate Sub-Neptunes?
arXiv:2205.06284 · doi:10.3847/1538-4357/ac625f
Abstract
The search for signs of life on other worlds has largely focused on terrestrial planets. Recent work, however, argues that life could exist in the atmospheres of temperate sub-Neptunes. Here, we evaluate the usefulness of carbon dioxide isotopologues as evidence of aerial life. Carbon isotopes are of particular interest as metabolic processes preferentially use the lighter C over C. In principle, the upcoming James Webb Space Telescope (JWST) will be able to spectrally resolve the C and C isotopologues of CO, but not CO and CH. We simulated observations of CO isotopologues in the H-dominated atmospheres of our nearest ( pc), temperate (equilibrium temperature of 250-350 K) sub-Neptunes with M dwarf host stars. We find CO and CO distinguishable if the atmosphere is H-dominated with a few percentage points of CO for the most idealized target with an Earth-like composition of the two most abundant isotopologues, CO and CO. With a Neptune-like metallicity of 100 solar and a C/O of 0.55, we are unable to distinguish between CO and CO in the atmospheres of temperate sub-Neptunes. If atmospheric composition largely follows metallicity scaling, the concentration of CO in a H-dominated atmosphere will be too low to distinguish CO isotopologues with JWST. In contrast, at higher metallicities, there will be more CO, but the smaller atmospheric scale height makes the measurement impossible. Carbon dioxide isotopologues are unlikely to be useful biosignature gases for the JWST era. Instead, isotopologue measurements should be used to evaluate formation mechanisms of planets and exoplanetary systems.
11 pages, 3 figures. Published in the Astrophysical Journal on May 4, 2022. The final authenticated version is available online at: https://iopscience.iop.org/article/10.3847/1538-4357/ac625f/meta
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