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Large sulfur isotope fractionations in Martian sediments at Gale crater

  • H. B. Franz
  • , A. C. McAdam
  • , D. W. Ming
  • , C. Freissinet
  • , P. R. Mahaffy
  • , D. L. Eldridge
  • , W. W. Fischer
  • , J. P. Grotzinger
  • , C. H. House
  • , J. A. Hurowitz
  • , S. M. McLennan
  • , S. P. Schwenzer
  • , D. T. Vaniman
  • , P. D. Archer
  • , S. K. Atreya
  • , P. G. Conrad
  • , J. W. Dottin
  • , J. L. Eigenbrode
  • , K. A. Farley
  • , D. P. Glavin
  • S. S. Johnson, C. A. Knudson, R. V. Morris, R. Navarro-González, A. A. Pavlov, R. Plummer, E. B. Rampe, J. C. Stern, A. Steele, R. E. Summons, B. Sutter
  • NASA Goddard Space Flight Center
  • NASA Johnson Space Center
  • National Space Science and Technology Center
  • University of Maryland, College Park
  • California Institute of Technology
  • Pennsylvania State University
  • Stony Brook University
  • Open University Milton Keynes
  • Planetary Science Institute
  • Jacobs Engineering
  • University of Michigan, Ann Arbor
  • Georgetown University
  • Universidad Nacional Autónoma de México
  • Aerodyne Industries
  • Carnegie Institution of Washington
  • Massachusetts Institute of Technology

Research output: Contribution to journalArticlepeer-review

79 Scopus citations

Abstract

Variability in the sulfur isotopic composition in sediments can reflect atmospheric, geologic and biological processes. Evidence for ancient fluvio-lacustrine environments at Gale crater on Mars and a lack of efficient crustal recycling mechanisms on the planet suggests a surface environment that was once warm enough to allow the presence of liquid water, at least for discrete periods of time, and implies a greenhouse effect that may have been influenced by sulfur-bearing volcanic gases. Here we report in situ analyses of the sulfur isotopic compositions of SO2 volatilized from ten sediment samples acquired by NASA's Curiosity rover along a 13 km traverse of Gale crater. We find large variations in sulfur isotopic composition that exceed those measured for Martian meteorites and show both depletion and enrichment in 34S. Measured values of Δ34S range from - 47 ± 14‰ to 28 ± 7‰, similar to the range typical of terrestrial environments. Although limited geochronological constraints on the stratigraphy traversed by Curiosity are available, we propose that the observed sulfur isotopic signatures at Gale crater can be explained by equilibrium fractionation between sulfate and sulfide in an impact-driven hydrothermal system and atmospheric processing of sulfur-bearing gases during transient warm periods.

Original languageEnglish
Pages (from-to)658-662
Number of pages5
JournalNature Geoscience
Volume10
Issue number9
DOIs
StatePublished - Sep 1 2017

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