Projects per year
Abstract
Recognizing whether a planet can support life is a primary goal of future exoplanet spectral characterization missions, but past research on habitability assessment has largely ignored the vastly different conditions that have existed in our planet's long habitable history. This study presents simulations of a habitable yet dramatically different phase of Earth's history, when the atmosphere contained a Titan-like, organic-rich haze. Prior work has claimed a haze-rich Archean Earth (3.8–2.5 billion years ago) would be frozen due to the haze's cooling effects. However, no previous studies have self-consistently taken into account climate, photochemistry, and fractal hazes. Here, we demonstrate using coupled climate-photochemical-microphysical simulations that hazes can cool the planet's surface by about 20 K, but habitable conditions with liquid surface water could be maintained with a relatively thick haze layer (τ ∼ 5 at 200 nm) even with the fainter young Sun. We find that optically thicker hazes are self-limiting due to their self-shielding properties, preventing catastrophic cooling of the planet. Hazes may even enhance planetary habitability through UV shielding, reducing surface UV flux by about 97% compared to a haze-free planet and potentially allowing survival of land-based organisms 2.7–2.6 billion years ago. The broad UV absorption signature produced by this haze may be visible across interstellar distances, allowing characterization of similar hazy exoplanets. The haze in Archean Earth's atmosphere was strongly dependent on biologically produced methane, and we propose that hydrocarbon haze may be a novel type of spectral biosignature on planets with substantial levels of CO2. Hazy Archean Earth is the most alien world for which we have geochemical constraints on environmental conditions, providing a useful analogue for similar habitable, anoxic exoplanets.
Original language | English |
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Pages (from-to) | 873-899 |
Number of pages | 27 |
Journal | Astrobiology |
Volume | 16 |
Issue number | 11 |
Early online date | 28 Oct 2016 |
DOIs | |
Publication status | Published - 1 Nov 2016 |
Keywords
- Haze
- Archean Earth
- Exoplanets
- Spectra
- Biosignatures
- Planetary habitability
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Dive into the research topics of 'The pale orange dot: the spectrum and habitability of hazy Archean Earth'. Together they form a unique fingerprint.Projects
- 2 Finished
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Did biogeochemical methane cycling: Did biogeochemical methane cycling regulate the Neoarchean atmosphere?
Claire, M. (PI)
1/10/13 → 30/03/17
Project: Standard
Profiles
Datasets
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Atmos
Arney, G. (Creator), Domagal-Goldman, S. D. (Creator), Meadows, V. S. (Creator), Wolf, E. T. (Creator), Schwieterman, E. (Creator), Charnay, B. (Creator), Claire, M. (Creator), Hébrard, E. (Creator) & Trainer, M. G. (Creator), The Virtual Planetary Laboratory, 2016
https://github.com/VirtualPlanetaryLaboratory/atmos and one more link, https://depts.washington.edu/naivpl/content/models (show fewer)
Dataset