Synthesis of 13C-depleted organic matter from CO in a reducing early Martian atmosphere

Author:

Ueno YuichiroORCID,Schmidt Johan A.ORCID,Johnson Matthew S.ORCID,Zang XiaofengORCID,Gilbert AlexisORCID,Kurokawa HiroyukiORCID,Usui TomohiroORCID,Aoki ShoheiORCID

Abstract

AbstractOrganic matter found in early Martian sediment may yield clues to the planet’s environmental conditions, prebiotic chemistry and habitability, but its origin remains unclear. Strong 13C depletion in sedimentary organic matter at Gale crater was recently detected by the Curiosity rover. Although this enigmatic depletion remains debated, if correct, a mechanism to cause such strong 13C depletion is required. Here we show from CO2 photolysis experiments and theoretical considerations that solar ultraviolet photolysis of CO2 in a reducing atmosphere can yield strongly 13C-depleted CO. We suggest that atmospheric synthesis of organic compounds from photolysis-produced CO is a plausible mechanism to explain the source of isotopically depleted organic matter in early Martian sediments. Furthermore, this mechanism could explain 13C enrichment of early Martian CO2 without requiring long-term carbon escape into space. A mass balance model calculation using our estimated isotopic fractionation factor indicates the conversion of approximately 20% of volcanic CO2 emissions on early Mars into organics via CO, consistent with the available data for carbon isotopes of carbonate. Although alternative pathways for organic compound production have been proposed, our findings suggest that considerable amounts of organic matter may have been synthesized from CO in a reducing early Martian atmosphere and deposited in sediments.

Funder

MEXT | Japan Society for the Promotion of Science

Carlsbergfondet

Publisher

Springer Science and Business Media LLC

Reference78 articles.

1. Ming, D. W. et al. Volatile and organic compositions of sedimentary rocks in Yellowknife Bay, Gale Crater, Mars. Science 15, 343 (2014).

2. Freissinet, C. et al. Organic molecules in the Sheepbed Mudstone, Gale Crater, Mars. J. Geophys. Res. Planets 120, 495–514 (2015).

3. Eigenbrode, J. L. et al. Organic matter preserved in 3-billion-year-old mudstones at Gale Crater, Mars. Science 360, 1096–1101 (2018).

4. Millan, M. et al. Sedimentary organics in Glen Torridon, Gale Crater, Mars: results from the SAM instrument suite and supporting laboratory analyses. J. Geophys. Res. Planets 127, e2021JE007107 (2021).

5. Franz, H. B. et al. Indigenous and exogenous organics and surface-atmosphere cycling inferred from carbon and oxygen isotopes at Gale Crater. Nat. Astron. 4, 526–532 (2020).

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