Detection of Copper by the ChemCam Instrument Along Curiosity's Traverse in Gale Crater, Mars: Elevated Abundances in Glen Torridon

Author:

Goetz Walter12ORCID,Dehouck Erwin3ORCID,Gasda Patrick J.4ORCID,Johnson Jeffrey R.5ORCID,Meslin Pierre‐Yves6ORCID,Lanza Nina L.4ORCID,Wiens Roger C.7ORCID,Rapin William6,Frydenvang Jens8ORCID,Payré Valerie9ORCID,Gasnault Olivier6ORCID

Affiliation:

1. Max Planck Institute for Solar System Research (MPS) Göttingen Germany

2. Geoscience Center, Department of Geobiology Georg‐August‐Universität Göttingen Göttingen Germany

3. Université de Lyon UCBL ENSL UJM CNRS LGL‐TPE Villeurbanne France

4. Los Alamos National Laboratory (LANL) Los Alamos NM USA

5. Johns Hopkins University, Applied Physics Laboratory MD Laurel USA

6. Institut de Recherche en Astrophysique et Planetologie (IRAP) Toulouse France

7. Earth, Atmospheric, and Planetary Sciences Purdue University IN West Lafayette USA

8. University of Copenhagen Copenhagen Denmark

9. Northern Arizona University AZ Flagstaff USA

Abstract

AbstractLaser‐induced breakdown spectroscopy, as utilized by the ChemCam instrument onboard the Curiosity rover, detected enhanced abundances of the element copper. Since landing in Gale crater (6 August 2012), 10 enhancements in copper abundance were observed during 3007 Martian days (sols) of rover operations and 24 km of driving (as of 20 January 2021). The most prominent ones were found in the Kimberley area on the crater floor (Aeolis Palus) and in Glen Torridon (GT) on the lower flanks of Aeolis Mons (Mt. Sharp). Enhancements in copper record the former existence of modestly acidic and oxidizing fluids, which were more oxidizing in Kimberley than in GT. Of the two main types of bedrock in the lowest part of GT, Mg‐rich “coherent” and K‐rich “rubbly” (named based on their outcrop expression), copper was detected only in coherent, not in rubbly bedrock. The difference between these two types of bedrock may be due to difference in provenance. Alternatively, based on a recently developed lacustrine‐groundwater mixing model, we suggest that rubbly bedrock was altered by modestly acidic, shallow‐subsurface lake water that leached out both copper and manganese, while coherent bedrock was affected by dominantly alkaline fluids which would be consistent with its mineralogical composition (including siderite) as returned by the CheMin instrument onboard the rover. Higher up in GT, ChemCam data indicated significant gradients in the copper concentration in coherent bedrock on a local scale of only a few meters, which suggests a different alteration style and possibly different types of diagenetic fluids.

Publisher

American Geophysical Union (AGU)

Subject

Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Geochemistry and Petrology,Geophysics

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