Published June 28, 2024 | Version in press
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Geological context and significance of the clay-sulfate transition region in Mount Sharp, Gale crater, Mars: An integrated assessment based on orbiter and rover data

Abstract

On Mars, phyllosilicate (“clay”) minerals are often associated with older terrains, and sulfate minerals are associated with younger terrains, and this dichotomy is taken as evidence that Mars’ surface dried up over time. Therefore, in situ investigation of the Mount Sharp strata in Gale crater, which record a shift from dominantly clay-bearing to sulfate-bearing minerals, as seen in visible−near-infrared orbital reflectance spectra, is a key science objective for the Mars Science Laboratory (MSL) Curiosity rover mission. Here, we present regional (orbiter-based) and in situ (rover-based) evidence for a low-angle erosional unconformity that separates the lacustrine and marginal lacustrine deposits of the Carolyn Shoemaker formation from the dominantly eolian deposits of the lower Mirador formation within the orbitally defined clay-sulfate transition region. The up-section record of wetter (Carolyn Shoemaker formation) to drier (lower Mirador formation) depositional conditions is accompanied by distinct changes in diagenesis. Clay minerals occur preferentially within the Carolyn Shoemaker formation and are absent within the lower members of the Mirador formation. At and above the proposed unconformity, strata are characterized by an increase in diagenetic nodules enriched in X-ray amorphous Mg-sulfate. Early clay formation in the Carolyn Shoemaker formation may have created a hydraulic barrier such that later migrating magnesium- and sulfur-rich fluids accumulated preferentially within the lower members of the Mirador formation. The proposed unconformity may have also acted as a fluid conduit to further promote Mg-sulfate nodule formation at the Carolyn Shoemaker−Mirador formation boundary. These results confirm an association of the clay-sulfate transition with the drying of depositional environments, but they also suggest that at least some orbital sulfate signatures within the region are not time-congruent with the environmental signals extracted from primary sedimentology. Our findings highlight that complex interactions among primary depositional environment, erosion, and diagenesis contribute to the transition in clay-sulfate orbital signatures observed in the stratigraphy of Mount Sharp.

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Acknowledgement

We gratefully acknowledge the National Aeronautics and Space Administration (NASA) Mars Science Laboratory (MSL) mission and the efforts of the MSL engineering and science operations teams for making this study possible. We are grateful to Malin Space Science Systems for providing all Mastcam mosaics analyzed and presented in this study. Part of this research was supported by the Future Investigators in NASA Earth and Space Science and Technology (FINESST) program (80NSSC20K1375). Part of this research was carried out at the Jet Propulsion Laboratory, California Institute of Technology, under a contract with NASA (80NM0018D0004). G. Caravaca, O. Gasnault, and S. Le Mouélic work on ChemCam, and Curiosity is supported by the Centre National d’Etudes Spatiales (CNES). Raw data products supporting the conclusions of this work can be obtained from the NASA Planetary Data System (PDS). Any use of trade, firm, or product names is for descriptive purposes only and does not imply endorsement by the U.S. government.

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Identifiers

ISSN
1943-2674

Funding

National Aeronautics and Space Administration
NASA Earth and Space Science and Technology Fellowship 80NSSC20K1375
National Aeronautics and Space Administration
80NM0018D0004
Centre National d'Études Spatiales