Is Extraterrestrial Life Suppressed on Subsurface Ocean Worlds due to the Paucity of Bioessential Elements?
arXiv:1806.00018 · doi:10.3847/1538-3881/aada02
Abstract
The availability of bioessential elements for "life as we know it", such as phosphorus (P) or possibly molybdenum (Mo), is expected to restrict the biological productivity of extraterrestrial biospheres. Here, we consider worlds with subsurface oceans and model the dissolved concentrations of bioessential elements. In particular, we focus on the sources and sinks of P (available as phosphates), and find that the average steady-state oceanic concentration of P is likely to be lower than the corresponding value on Earth by a few orders of magnitude, provided that the oceans are alkaline and possess hydrothermal activity. While our result does not eliminate the prospects of life on subsurface worlds like Enceladus, it suggests that the putative biospheres might be oligotrophic, and perhaps harder to detect. Along these lines, potential biospheres in the clouds of Venus may end up being limited by the availability of Mo. We also point out the possibility that stellar spectroscopy can be used to deduce potential constraints on the availability of bioessential elements on planets and moons.
Accepted for publication in The Astronomical Journal, 9 pages, 0 figures
References in corpus (12)
- Gravitational Waves and Gamma-rays from a Binary Neutron Star Merger: GW170817 and GRB 170817A
- Origin of the heavy elements in binary neutron-star mergers from a gravitational wave event
- The Combined Ultraviolet, Optical, and Near-Infrared Light Curves of the Kilonova Associated with the Binary Neutron Star Merger GW170817: Unified Data Set, Analytic Models, and Physical Implications
- The Electromagnetic Counterpart of the Binary Neutron Star Merger LIGO/VIRGO GW170817. IV. Detection of Near-infrared Signatures of r-process Nucleosynthesis with Gemini-South
- Was Venus the First Habitable World of our Solar System?
- The pH of Enceladus' ocean
- Discovery of HE 1523-0901, a Strongly r-Process Enhanced Metal-Poor Star with Detected Uranium
- Chemical abundances of 1111 FGK stars from the HARPS GTO planet search program II: Cu, Zn, Sr, Y, Zr, Ba, Ce, Nd and Eu
- Stellar Archaeology -- Exploring the Universe with Metal-Poor Stars
- Stellar abundances and presolar grains trace the nucleosynthetic origin of molybdenum and ruthenium
- Subsurface Exolife
- The Chemical Evolution of Phosphorus
Cited by in corpus (11)
- Physical constraints for the evolution of life on exoplanets
- Dependence of Biological Activity on the Surface Water Fraction of Planets
- Implications of Captured Interstellar Objects for Panspermia and Extraterrestrial Life
- Active Galactic Nuclei: Boon or Bane for Biota?
- Brown Dwarf Atmospheres as the Potentially Most Detectable and Abundant Sites for Life
- Role of stellar physics in regulating the critical steps for life
- Eta-Earth Revisited II: Deriving a Maximum Number of Earth-like Habitats in the Galactic Disk
- A Bayesian Analysis of Technological Intelligence in Land and Oceans
- Characteristics of aquatic biospheres on temperate planets around Sun-like stars and M-dwarfs
- A light sail astrobiology precursor mission to Enceladus and Europa
- Physical Constraints on Motility with Applications to Possible Life on Mars and Enceladus