English

Phosphine as a Biosignature Gas in Exoplanet Atmospheres

Earth and Planetary Astrophysics 2020-02-12 v2

Abstract

A long-term goal of exoplanet studies is the identification and detection of biosignature gases. Beyond the most discussed biosignature gas O2_2, only a handful of gases have been considered in detail. Here we evaluate phosphine (PH3_3). On Earth, PH3_3 is associated with anaerobic ecosystems, and as such is a potential biosignature gas on anoxic exoplanets. We simulate CO2_2- and H2_2-dominated habitable terrestrial planet atmospheres. We find that PH3_3 can accumulate to detectable concentrations on planets with surface production fluxes of 1010^{10}-1014^{14} cm2^{-2} s1^{-1} (corresponding to surface concentrations of 10s of ppb to 100s of ppm), depending on atmospheric composition and UV flux. While high, such surface fluxes are comparable to the global terrestrial production rate of CH4_4 (1011^{11} cm2^{-2} s1^{-1}) and below the maximum local terrestrial PH3_3 production rate (1014^{14} cm2^{-2} s1^{-1}). As with other gases, PH3_3 can more readily accumulate on low-UV planets, e.g. planets orbiting quiet M-dwarfs or with a photochemical UV shield. If detected, PH3_3 is a promising biosignature gas, as it has no known abiotic false positives on terrestrial planets that could generate the high fluxes required for detection. PH3_3 also has 3 strong spectral features such that in any atmosphere scenario 1 of the 3 will be unique compared to other dominant spectroscopic molecules. PH3_3's weakness as a biosignature gas is its high reactivity, requiring high outgassing for detectability. We calculate that 10s of hours of JWST time are required for a potential detection of PH3_3. Yet because PH3_3 is spectrally active in the same wavelength regions as other atmospherically important molecules (e.g., H2_2O and CH4_4), searches for PH3_3 can be carried out at no additional observational cost to searches for other molecules relevant to exoplanet habitability.

Keywords

Cite

@article{arxiv.1910.05224,
  title  = {Phosphine as a Biosignature Gas in Exoplanet Atmospheres},
  author = {Clara Sousa-Silva and Sara Seager and Sukrit Ranjan and Janusz J. Petkowski and Zhuchang Zhan and Renyu Hu and William Bains},
  journal= {arXiv preprint arXiv:1910.05224},
  year   = {2020}
}

Comments

Accepted to Astrobiology. Expected publication info: Volume 20, Issue 2