Possible favored Great Oxidation Event scenario on exoplanets around M-Stars with the example of TRAPPIST-1e
arXiv:2601.18324 · doi:10.1038/s41598-026-37144-3
Abstract
The Great Oxidation Event (GOE), which marked the transition from an anoxic to an oxygenated atmosphere, occurred 2.4 billion years ago on Earth, several hundreds of millions of years after the emergence of oxygenic photosynthesis. This long delay implies that specific conditions in terms of biomass productivity and burial were necessary to trigger the GOE. It could be a limiting factor for the development of oxygenated atmospheres on inhabited exoplanets. In this study, we explore the specificities of a terrestrial planet in the habitable zone of an M dwarf for a GOE. Using a 1D coupled photochemical-climate model, we simulate the atmospheric evolution of TRAPPIST-1 e, an Earth-like exoplanet, exploring the effect of oxygen sources (biotic or abiotic). Our results show that the stellar energy distribution promotes O3 production at lower O2 concentrations compared to Earth, and the ozone layer on TRAPPIST-1 e forms more efficiently. This lowers the threshold for atmospheric oxidation, suggesting that the GOE on TRAPPIST-1 e would occur quickly after the rise of oxygenic photosynthesis, up to 1Gyrs earlier than on Earth, and would reach O2 enabling oxygenic respiration and thus the development of animals. We may question whether this is a general behavior around several M-stars. Furthermore, we discuss how the overproduction of ozone could make O3 detection possible using the James Webb Space Telescope, providing a potential method to observe oxygenation signatures on exoplanets in the near future. Previous studies predicted that for an Earth-like atmosphere O3 would require over 150 transits for detection, but our results show that significantly fewer transits could be needed.
Accepted in Nature Scientific Report
References in corpus (18)
- Seven temperate terrestrial planets around the nearby ultracool dwarf star TRAPPIST-1
- Bayes in the sky: Bayesian inference and model selection in cosmology
- Extreme Water Loss and Abiotic O Buildup On Planets Throughout the Habitable Zones of M Dwarfs
- Tau-REx I: A next generation retrieval code for exoplanetary atmospheres
- Abiotic oxygen-dominated atmospheres on terrestrial habitable zone planets
- Abiotic Ozone and Oxygen in Atmospheres Similar to Prebiotic Earth
- Day-night cloud asymmetry prevents early oceans on Venus but not on Earth
- Detectability of atmospheric features of Earth-like planets in the habitable zone around M dwarfs
- Predicting the Extreme Ultraviolet Radiation Environment of Exoplanets Around Low-Mass Stars: the TRAPPIST-1 System
- The Mega-MUSCLES Spectral Energy Distribution Of TRAPPIST-1
- Formation and dynamics of water clouds on temperate sub-Neptunes: The example of K2-18b
- A comparison of chemical models of exoplanet atmospheres enabled by TauREx 3.1
- Predictions for Observable Atmospheres of Trappist-1 Planets from a Fully Coupled Atmosphere-Interior Evolution Model
- 3D modelling of the impact of stellar activity on tidally locked terrestrial exoplanets: atmospheric composition and habitability
- O2- and CO-Rich Atmospheres for Potentially Habitable Environments on TRAPPIST-1 Planets
- JWST Reveals CH, CO, and HO in a Metal-rich Miscible Atmosphere on a Two-Earth-Radius Exoplanet
- Dynamics of the Great Oxidation Event from a 3D photochemical-climate model
- ARES VI: Viability of one-dimensional retrieval models for transmission spectroscopy characterization of exo-atmospheres in the era of JWST and Ariel