Photosynthetic Potential of Planets in 3:2 Spin Orbit Resonances
arXiv:1402.5044 · doi:10.1017/S1473550414000068
Abstract
Photosynthetic life requires sufficient photosynthetically active radiation (PAR) to metabolise. On Earth, plant behaviour, physiology and metabolism are sculpted around the night-day cycle by an endogenous biological circadian clock. The evolution of life was influenced by the Earth-Sun orbital dynamic, which generates the photo-environment incident on the planetary surface. In this work the unusual photo-environment of an Earth-like planet (ELP) in 3:2 spin orbit resonance is explored. Photo-environments on the ELP are longitudinally differentiated, in addition to differentiations relating to latitude and depth (for aquatic organisms) which are familiar on Earth. The light environment on such a planet could be compatible with Earth's photosynthetic life although the threat of atmospheric freeze-out and prolonged periods of darkness would present significant challenges. We emphasise the relationship between the evolution of life on a planetary body with its orbital dynamics.
18 pages, 17 figures, accepted for publication in the International Journal of Astrobiology
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Cited by in corpus (6)
- Habitable Climate Scenarios for Proxima Centauri b With a Dynamic Ocean
- Surface Flux Patterns on Planets in Circumbinary Systems, and Potential for Photosynthesis
- Milankovitch Cycles of Terrestrial Planets in Binary Star Systems
- Habitability properties of circumbinary planets
- The Spin-Orbit Evolution of GJ 667C System: The Effect of Composition and Other Planet's Perturbations
- Super-Earths, M Dwarfs, and Photosynthetic Organisms: Habitability in the Lab