Characterizing Hydrated Sulfates and Altered Phases in Jezero Crater Fan and Floor Geologic Units With SHERLOC on Mars 2020

Author:

Phua Yu Yu1ORCID,Ehlmann Bethany L.1ORCID,Siljeström Sandra2ORCID,Czaja Andrew D.3ORCID,Beck Pierre4ORCID,Connell Stephanie5,Wiens Roger C.5ORCID,Jakubek Ryan S.6,Williams Rebecca M. E.7ORCID,Zorzano Maria‐Paz8ORCID,Minitti Michelle E.9ORCID,Pascuzzo Alyssa C.10ORCID,Hand Kevin P.11ORCID,Bhartia Rohit12ORCID,Kah Linda C.13ORCID,Mandon Lucia1,Razzell Hollis Joseph14,Scheller Eva L.15ORCID,Sharma Sunanda11,Steele Andrew16ORCID,Uckert Kyle11ORCID,Williford Kenneth H.17,Yanchilina Anastasia G.1ORCID

Affiliation:

1. Division of Geological and Planetary Sciences California Institute of Technology Pasadena CA USA

2. RISE Research Institutes of Sweden Stockholm Sweden

3. Department of Geosciences University of Cincinnati Cincinnati OH USA

4. CNRS‐IPAG Université Grenoble Alpes Grenoble France

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

6. Jacobs, NASA Johnson Space Center Houston TX USA

7. Planetary Science Institute Tucson AZ USA

8. Centro de Astrobiología (CAB) CSIC‐INTA Madrid Spain

9. Framework Silver Spring MD USA

10. Malin Space Science Systems San Diego CA USA

11. Jet Propulsion Laboratory California Institute of Technology Pasadena CA USA

12. Photon Systems Inc. Covina CA USA

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

14. The Natural History Museum London UK

15. Department of Earth, Atmospheric, and Planetary Sciences MIT Cambridge MA USA

16. Carnegie Institution of Washington Washington DC USA

17. Blue Marble Space Institute of Science Seattle WA USA

Abstract

AbstractThe Mars 2020 Perseverance rover has explored fluvio‐lacustrine sedimentary rocks within Jezero crater. Prior work showed that igneous crater floor Séítah and Máaz formations have mafic mineralogy with alteration phases that indicate multiple episodes of aqueous alteration. In this work, we extend the analyses of hydration to targets in the Jezero western fan delta, using data from the SHERLOC (Scanning Habitable Environments with Raman and Luminescence for Organics and Chemicals) Raman spectrometer. Spectral features, for example, sulfate and hydration peak positions and shapes, vary within, and across the crater floor and western fan. The proportion of targets with hydration associated with sulfates was approximately equal in the crater floor and the western fan. All hydrated targets in the crater floor and upper fan showed bimodal hydration peaks at ∼3,200 and ∼3,400 cm−1. The sulfate symmetric stretch at ∼1,000 cm−1 coupled with a hydration peak at ∼3,400 cm−1 indicate that MgSO4·nH2O (2 < n ≤ 5) is a likely hydration carrier phase in all units, perhaps paired with low‐hydration (n ≤ 1) amorphous Mg‐sulfates, indicated by the ∼3,200 cm−1 peak. Low‐hydration MgSO4·nH2O (n = 1–2) are more prevalent in the fan, and hydrated targets in the fan front only had one peak at ∼3,400 cm−1. While anhydrite co‐occurs with hydrated Mg‐sulfates in the crater floor and fan front, hydrated Ca‐sulfates are observed instead at the top of the upper fan. Collectively, the data imply aqueous deposition of sediments with formation of salts from high ionic strength fluids and subsequent aridity to preserve the observed hydration states.

Publisher

American Geophysical Union (AGU)

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