False negatives for remote life detection on ocean-bearing planets: Lessons from the early Earth
arXiv:1702.01137 · doi:10.1089/ast.2016.1598
Abstract
Ocean-atmosphere chemistry on Earth has undergone dramatic evolutionary changes through its long history, with potentially significant ramifications for the emergence and long-term stability of atmospheric biosignatures. Though a great deal of work has centered on refining our understanding of false positives for remote life detection, much less attention has been paid to the possibility of false negatives, that is, cryptical biospheres that are widespread and active on a planet's surface but are ultimately undetectable or difficult to detect in the composition of a planet's atmosphere. Here, we summarize recent developments from geochemical proxy records and Earth system models that provide insight into the long-term evolution of the most readily detectable potential biosignature gases on Earth - oxygen (O2), ozone (O3), and methane (CH4). We suggest that the canonical O2-CH4 disequilibrium biosignature would perhaps have been challenging to detect remotely during Earth's ~4.5 billion year history and that in general atmospheric O2/O3 levels have been a poor proxy for the presence of Earth's biosphere for all but the last ~500 million years. We further suggest that detecting atmospheric CH4 would have been problematic for most of the last ~2.5 billion years of Earth's history. More broadly, we stress that internal oceanic recycling of biosignature gases will often render surface biospheres on ocean-bearing silicate worlds cryptic, with the implication that the planets most conducive to the development and maintenance of a pervasive biosphere will often be challenging to characterize via conventional atmospheric biosignatures.
Accepted to Astrobiology, 17 pages, 4 figures
References in corpus (14)
- The James Webb Space Telescope
- Extreme Water Loss and Abiotic O Buildup On Planets Throughout the Habitable Zones of M Dwarfs
- The Pale Orange Dot: The Spectrum and Habitability of Hazy Archean Earth
- Combining high-dispersion spectroscopy (HDS) with high contrast imaging (HCI): Probing rocky planets around our nearest neighbors
- The MUSCLES Treasury Survey III: X-ray to Infrared Spectra of 11 M and K Stars Hosting Planets
- Abiotic oxygen-dominated atmospheres on terrestrial habitable zone planets
- Abiotic Ozone and Oxygen in Atmospheres Similar to Prebiotic Earth
- Abiotic O Levels on Planets around F, G, K, and M Stars: Possible False Positives for Life?
- Characterizing Transiting Planet Atmospheres through 2025
- On detecting biospheres from chemical thermodynamic disequilibrium in planetary atmospheres
- Detection of Ocean Glint and Ozone Absorption Using LCROSS Earth Observations
- Identifying Planetary Biosignature Impostors: Spectral Features of CO and O4 Resulting from Abiotic O2/O3 Production
- Detecting and Constraining N Abundances in Planetary Atmospheres Using Collisional Pairs
- Characterizing Rocky and Gaseous Exoplanets with 2-meter Class Space-based Coronagraphs
Cited by in corpus (45)
- Exoplanet Biosignatures: A Review of Remotely Detectable Signs of Life
- Exoplanet Biosignatures: Understanding Oxygen as a Biosignature in the Context of Its Environment
- Disequilibrium biosignatures over Earth history and implications for detecting exoplanet life
- Detectability of biosignatures in anoxic atmospheres with the James Webb Space Telescope: A TRAPPIST-1e case study
- Exoplanet Biosignatures: Future Directions
- Anoxygenic photosynthesis and the delayed oxygenation of Earth's atmosphere
- Photochemistry of Anoxic Abiotic Habitable Planet Atmospheres: Impact of New HO Cross-Sections
- A Statistical Comparative Planetology Approach to the Hunt for Habitable Exoplanets and Life Beyond the Solar System
- TRAPPIST-1: Global Results of the Spitzer Exploration Science Program {\it Red Worlds}
- Oceanographic Considerations for Exoplanet Life Detection
- Atmospheric Seasonality as an Exoplanet Biosignature
- The future lifespan of Earth's oxygenated Atmosphere
- The K Dwarf Advantage for Biosignatures on Directly Imaged Exoplanets
- Rethinking CO Antibiosignatures in the Search for Life Beyond the Solar System
- When is chemical disequilibrium in Earth-like planetary atmospheres a biosignature versus an anti-biosignature? Disequilibria from dead to living worlds
- Relative Likelihood of Success in the Searches for Primitive versus Intelligent Extraterrestrial Life
- Understanding planetary context to enable life detection on exoplanets and test the Copernican principle
- Atmospheric Beacons of Life from Exoplanets Around G and K Stars
- The Fundamental Connections Between the Solar System and Exoplanetary Science
- Photosynthesis on habitable planets around low-mass stars
- Evaluating the Plausible Range of N2O Biosignatures on Exo-Earths: An Integrated Biogeochemical, Photochemical, and Spectral Modeling Approach
- A revised lower estimate of ozone columns during Earth's oxygenated history
- Theoretical Reflectance Spectra of Earth-Like Planets through Their Evolutions: Impact of Clouds on the Detectability of Oxygen, Water, and Methane with Future Direct Imaging Missions
- An empirical infrared transit spectrum of Earth: opacity windows and biosignatures
- Probing the capability of future direct imaging missions to spectrally constrain the frequency of Earth-like planets
- Photochemical Runaway in Exoplanet Atmospheres: Implications for Biosignatures
- Bioverse: a simulation framework to assess the statistical power of future biosignature surveys
- Superhabitability of High-Obliquity and High-Eccentricity Planets
- Role of stellar physics in regulating the critical steps for life
- Earth as an Exoplanet. II. Earth's Time-variable Thermal Emission and Its Atmospheric Seasonality of Bioindicators
- Testing Earth-like atmospheric evolution on exo-Earths through oxygen absorption: required sample sizes and the advantage of age-based target selection
- Reflected spectroscopy of small exoplanets III: probing the UV band to measure biosignature gasses
- Earth as an Exoplanet: I. Time variable thermal emission using spatially resolved MODIS data
- Valuing life detection missions
- Surface and Temporal Biosignatures
- A Geologically Robust Procedure For Observing Rocky Exoplanets to Ensure that Detection of Atmospheric Oxygen is an Earth-Like Biosignature
- Earth as an Exoplanet. III. Using Empirical Thermal Emission Spectra as an Input for Atmospheric Retrieval of an Earth-twin Exoplanet
- Photochemical Oxygen in Non-1 Bar CO2 Atmospheres of Terrestrial Exoplanets
- Earth: Atmospheric Evolution of a Habitable Planet
- Characteristics of aquatic biospheres on temperate planets around Sun-like stars and M-dwarfs
- The Hubble Space Telescope's near-UV and optical transmission spectrum of Earth as an exoplanet
- Influence of Biomass Emissions upon Habitability, Biosignatures and Detectability in Earth-like Atmospheres
- The Detectability of Earth's Biosignatures Across Time
- The Diversity of Exoplanetary Environments and the Search for Signs of Life Beyond Earth
- Chemistry, Climate, and Transmission Spectra of TRAPPIST-1 e Explored with a Multimodel Sparse Sampled Ensemble