Diverse Lava Flow Morphologies in the Stratigraphy of the Jezero Crater Floor

Author:

Alwmark S.12ORCID,Horgan B.3ORCID,Udry A.4ORCID,Bechtold A.56ORCID,Fagents S.7ORCID,Ravanis E.7,Crumpler L.8ORCID,Schmitz N.9ORCID,Cloutis E.10ORCID,Brown A.11ORCID,Flannery D.12ORCID,Gasnault O.13ORCID,Grotzinger J.14,Gupta S.15,Kah L.16ORCID,Kelemen P.17ORCID,Kinch K.2ORCID,Núñez J.18ORCID

Affiliation:

1. Department of Geology Lund University Lund Sweden

2. Niels Bohr Institute University of Copenhagen Copenhagen Denmark

3. Department of Earth, Atmospheric, and Planetary Sciences Purdue University West Lafayette IN USA

4. Department of Geoscience University of Nevada, Las Vegas Las Vegas NV USA

5. Austrian Academy of Sciences Vienna Austria

6. Department of Lithospheric Research University of Vienna Vienna Austria

7. Hawaiʻi Institute of Geophysics and Planetology University of Hawaiʻi at Mānoa Honolulu HI USA

8. New Mexico Museum of Natural History & Science Albuquerque NM USA

9. German Aerospace Center (DLR) Institute of Planetary Research Berlin Germany

10. The University of Winnipeg Winnipeg MB Canada

11. Plancius Research Severna Park MD USA

12. Queensland University of Technology Brisbane QLD Australia

13. Institut de Recherche en Astrophysique et Planétologie (IRAP) Université de Toulouse CNRS CNES Toulouse France

14. Division of Geological and Planetary Sciences Caltech Pasadena CA USA

15. Department of Earth Science & Engineering Imperial College London London UK

16. Department of Earth and Planetary Sciences University of Tennessee‐Knoxville Knoxville TN USA

17. Department of Earth & Environmental Sciences Columbia University Palisades NY USA

18. Johns Hopkins University Applied Physics Laboratory Laurel MD USA

Abstract

AbstractWe present a combined geomorphologic, multispectral, and geochemical analysis of crater floor rocks in Jezero crater based on data obtained by the Mast Camera Zoom and SuperCam instruments onboard the NASA Mars 2020 Perseverance rover. The combined data from this analysis together with the results of a comparative study with geologic sites on Earth allows us to interpret the origins of rocks exposed along the Artuby ridge, a ∼900 m long scarp of lower Máaz formation rocks. The ridge exposes rocks belonging to two morphologically distinct members, Artuby and Rochette, both of which have basaltic composition and are spectrally indistinguishable in our analysis. Artuby rocks consist of morphologically distinct units that alternate over the ridge, bulbous, hummocky, layers with varying thicknesses that in places appear to have flowed over underlying strata, and sub‐planar thinner laterally continuous layers with variable friability. The Rochette member has a massive appearance with pronounced pitting and sub‐horizontal partings. Our findings are most consistent with a primary igneous emplacement as lava flows, through multiple eruptions, and we propose that the thin layers result either from preferential weathering, interbedded ash/tephra layers, ʻaʻā clinker layers, or aeolian deposition. Our analyses provide essential geologic context for the Máaz formation samples that will be returned to Earth and highlight the diversity and complexity of geologic processes on Mars not visible from orbit.

Funder

Vetenskapsrådet

National Aeronautics and Space Administration

Centre National d’Etudes Spatiales

Australian Research Council

Canadian Space Agency

Natural Sciences and Engineering Research Council of Canada

Jet Propulsion Laboratory

Carlsbergfondet

Publisher

American Geophysical Union (AGU)

Subject

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

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