A productivity collapse to end earth's great oxidation
Date
2019-08-27Author
Hodgskiss, Malcolm S. W.
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Crockford, Peter W.
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Peng, Yongbo
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Wing, Boswell A.
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Horner, Tristan J.
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https://hdl.handle.net/1912/24561As published
https://doi.org/10.1073/pnas.1900325116DOI
10.1073/pnas.1900325116Keyword
Proterozoic; primary productivity; Great Oxidation Event; triple-oxygen isotopes; nutrient limitationAbstract
It has been hypothesized that the overall size of—or efficiency of carbon export from—the biosphere decreased at the end of the Great Oxidation Event (GOE) (ca. 2,400 to 2,050 Ma). However, the timing, tempo, and trigger for this decrease remain poorly constrained. Here we test this hypothesis by studying the isotope geochemistry of sulfate minerals from the Belcher Group, in subarctic Canada. Using insights from sulfur and barium isotope measurements, combined with radiometric ages from bracketing strata, we infer that the sulfate minerals studied here record ambient sulfate in the immediate aftermath of the GOE (ca. 2,018 Ma). These sulfate minerals captured negative triple-oxygen isotope anomalies as low as ∼ −0.8‰. Such negative values occurring shortly after the GOE require a rapid reduction in primary productivity of >80%, although even larger reductions are plausible. Given that these data imply a collapse in primary productivity rather than export efficiency, the trigger for this shift in the Earth system must reflect a change in the availability of nutrients, such as phosphorus. Cumulatively, these data highlight that Earth’s GOE is a tale of feast and famine: A geologically unprecedented reduction in the size of the biosphere occurred across the end-GOE transition.
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Author Posting. © National Academy of Sciences, 2019. This article is posted here by permission of National Academy of Sciences for personal use, not for redistribution. The definitive version was published in Proceedings of the National Academy of Sciences 116 (35), (2019): 17207-17212, doi:10.1073/pnas.1900325116.
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Hodgskiss, M. S. W., Crockford, P. W., Peng, Y., Wing, B. A., & Horner, T. J. (2019). A productivity collapse to end earth's great oxidation. Proceedings of the National Academy of Sciences of the United States of America, 116 (35) 17207-17212.Related items
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