Mantle Degassing Lifetimes through Galactic Time and the Maximum Age Stagnant-lid Rocky Exoplanets can Support Temperate Climates
arXiv:2204.04243 · doi:10.3847/2041-8213/ac6596
Abstract
The ideal exoplanets to search for life are those within a star's habitable zone. However, even within the habitable zone planets can still develop uninhabitable climate states. Sustaining a temperate climate over geologic (Gyr) timescales requires a planet contain sufficient internal energy to power a planetary-scale carbon cycle. A major component of a rocky planet's energy budget is the heat produced by the decay of radioactive elements, especially K, Th, U and U. As the planet ages and these elements decay, this radiogenic energy source dwindles. Here we estimate the probability distribution of the amount of these heat producing elements (HPEs) that enter into rocky exoplanets through Galactic history, by combining the system-to-system variation seen in stellar abundance data with the results from Galactic chemical evolution models. Using these distributions, we perform Monte-Carlo thermal evolution models that maximize the mantle cooling rate. This allows us to create a pessimistic estimate of lifetime a rocky, stagnant-lid exoplanet can support a global carbon cycle and temperate climate as a function of its mass and when it in Galactic history. We apply this framework to a sample of 17 likely rocky exoplanets with measured ages, 7 of which we predict are likely to be actively degassing today despite our pessimistic assumptions. For the remaining planets, including those orbiting TRAPPIST-1, we cannot confidently assume they currently contain sufficient internal heat to support mantle degassing at a rate sufficient to sustain a global carbon cycle or temperate climate without additional tidal heating or undergoing plate tectonics.
Accepted to ApJ Letters
References in corpus (20)
- Stellar Abundances in the Solar Neighborhood: The Hypatia Catalog
- Three-Dimensional Simulations of Core-Collapse Supernovae: From Shock Revival to Shock Breakout
- Inevitability of Plate Tectonics on Super-Earths
- Discovery of HE 1523-0901, a Strongly r-Process Enhanced Metal-Poor Star with Detected Uranium
- Geodynamics and Rate of Volcanism on Massive Earth-like Planets
- An R-process enhanced star in the dwarf galaxy Tucana III
- Interaction of Supernova Ejecta with Nearby Protoplanetary Disks
- On the Age of the TRAPPIST-1 System
- Whole planet coupling between climate, mantle, and core: Implications for the evolution of rocky planets
- The habitability of a stagnant-lid Earth
- Magma oceans and enhanced volcanism on TRAPPIST-1 planets due to induction heating
- The persistence of oceans on Earth-like planets: insights from the deep-water cycle
- Habitability of Earth-like stagnant lid planets: Climate evolution and recovery from snowball states
- The Taurus Boundary of Stellar/Substellar (TBOSS) Survey II. Disk Masses from ALMA Continuum Observations
- Detectability of Life Using Oxygen on Pelagic Planets and Water Worlds
- Multi-wavelength study of the supernova remnant Kes 79 (G33.6+0.1): On its supernova properties and expansion into a molecular environment
- Waterworlds Probably Do Not Experience Magmatic Outgassing
- Radiogenic Heating and its Influence on Rocky Planet Dynamos and Habitability
- Indications of a Si-rich bilateral jet of ejecta in the Vela SNR observed with XMM-Newton
- Origin of the bilateral structure of the supernova remnant G296.5+10