Inferring Chemical Disequilibrium Biosignatures for Proterozoic Earth-Like Exoplanets

Fuente: arXiv
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Main Authors: Young, Amber V., Robinson, Tyler D., Krissansen-Totton, Joshua, Schwieterman, Edward W., Wogan, Nicholas F., Way, Michael J., Sohl, Linda E., Arney, Giada N., Reinhard, Christopher T., Line, Michael R., Catling, David C., Windsor, James D.
Format: Preprint
Published: 2023
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author Young, Amber V.
Robinson, Tyler D.
Krissansen-Totton, Joshua
Schwieterman, Edward W.
Wogan, Nicholas F.
Way, Michael J.
Sohl, Linda E.
Arney, Giada N.
Reinhard, Christopher T.
Line, Michael R.
Catling, David C.
Windsor, James D.
author_facet Young, Amber V.
Robinson, Tyler D.
Krissansen-Totton, Joshua
Schwieterman, Edward W.
Wogan, Nicholas F.
Way, Michael J.
Sohl, Linda E.
Arney, Giada N.
Reinhard, Christopher T.
Line, Michael R.
Catling, David C.
Windsor, James D.
contents Chemical disequilibrium quantified via available free energy has previously been proposed as a potential biosignature. However, exoplanet biosignature remote sensing work has not yet investigated how observational uncertainties impact the ability to infer a life-generated available free energy. We pair an atmospheric retrieval tool to a thermodynamics model to assess the detectability of chemical disequilibrium signatures of Earth-like exoplanets, emphasizing the Proterozoic Eon where atmospheric abundances of oxygen-methane disequilibrium pairs may have been relatively high. Retrieval model studies applied across a range of gas abundances revealed that order-of-magnitude constraints on disequilibrium energy are achieved with simulated reflected-light observations at the high abundance scenario and signal-to-noise ratios (50) while weak constraints are found at moderate SNRs (20\,--\,30) for med\,--\,low abundance cases. Furthermore, the disequilibrium energy constraints are improved by modest thermal information encoded in water vapor opacities at optical and near-infrared wavelengths. These results highlight how remotely detecting chemical disequilibrium biosignatures can be a useful and metabolism-agnostic approach to biosignature detection.
format Preprint
id arxiv_https___arxiv_org_abs_2311_06083
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Inferring Chemical Disequilibrium Biosignatures for Proterozoic Earth-Like Exoplanets
Young, Amber V.
Robinson, Tyler D.
Krissansen-Totton, Joshua
Schwieterman, Edward W.
Wogan, Nicholas F.
Way, Michael J.
Sohl, Linda E.
Arney, Giada N.
Reinhard, Christopher T.
Line, Michael R.
Catling, David C.
Windsor, James D.
Earth and Planetary Astrophysics
Chemical disequilibrium quantified via available free energy has previously been proposed as a potential biosignature. However, exoplanet biosignature remote sensing work has not yet investigated how observational uncertainties impact the ability to infer a life-generated available free energy. We pair an atmospheric retrieval tool to a thermodynamics model to assess the detectability of chemical disequilibrium signatures of Earth-like exoplanets, emphasizing the Proterozoic Eon where atmospheric abundances of oxygen-methane disequilibrium pairs may have been relatively high. Retrieval model studies applied across a range of gas abundances revealed that order-of-magnitude constraints on disequilibrium energy are achieved with simulated reflected-light observations at the high abundance scenario and signal-to-noise ratios (50) while weak constraints are found at moderate SNRs (20\,--\,30) for med\,--\,low abundance cases. Furthermore, the disequilibrium energy constraints are improved by modest thermal information encoded in water vapor opacities at optical and near-infrared wavelengths. These results highlight how remotely detecting chemical disequilibrium biosignatures can be a useful and metabolism-agnostic approach to biosignature detection.
title Inferring Chemical Disequilibrium Biosignatures for Proterozoic Earth-Like Exoplanets
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2311.06083