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Article

Assessment of Sulfate Sources under Cold Conditions as a Geochemical Proxy for the Origin of Sulfates in the Circumpolar Dunes on Mars

by
Anna Szynkiewicz
1,* and
Janice L. Bishop
2
1
Department of Earth and Planetary Sciences, University of Tennessee, Knoxville, TN 37916, USA
2
Carl Sagan Center, SETI Institute, Mountain View, CA 94043, USA
*
Author to whom correspondence should be addressed.
Minerals 2021, 11(5), 507; https://doi.org/10.3390/min11050507
Submission received: 11 February 2021 / Revised: 5 May 2021 / Accepted: 8 May 2021 / Published: 11 May 2021

Abstract

Determining aqueous sulfate sources in terrestrial cold environments can provide an insight into the surface hydrological conditions and sulfur cycle on Mars. In this study, we analyzed sulfur and oxygen isotope compositions of secondary sulfate salts (e.g., gypsum, thenardite) in the surficial sediments and soils of the McMurdo Dry Valleys (MDV), Antarctica to determine contributions of sulfate from bedrock chemical weathering and atmospheric deposition under persistent dry polar conditions. The sulfate showed wider variation of δ34S (+15.8‰ to +32.5‰) compared to smaller ranges of δ18O (−8.9‰ to −4.1‰). In contrast, the δ34S of bedrock sulfide showed significantly lower and consistent values across the studied area (−0.6‰ to +3.3‰). Based on the δ34S trends, sulfide weathering may contribute up to 20–50% of secondary sulfate salts in the MDV. While the remaining 50–80% of sulfate inputs may originate from atmospheric deposition (e.g., sea aerosols, dimethulsulfide oxidation), the subglacial brines derived by relicts of seawater and/or lake/pond water influenced by microbial sulfate reduction could also be important sulfate endmembers particularly in the Antarctic lowland thaw zones. Additional field observations of frost, ponding water, and thin gypsum crusts on the terrestrial gypsum dunes at White Sands supports reactivity of gypsum on the surface of these dunes during cold winter conditions. Combined with our improved geochemical model of the sulfur cycle for cold Antarctic settings, we propose that transient liquid water or frost was available in near-surface environments at the time of gypsum formation in the north polar region on Mars. Ice and/or water interaction with basaltic sand of the basal unit (paleo-erg) would have enhanced leaching of sulfate from both sulfide oxidation and atmospheric deposition and resulted in formation of secondary gypsum salts.
Keywords: sulfate; isotopes; polar; Earth; Mars sulfate; isotopes; polar; Earth; Mars

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MDPI and ACS Style

Szynkiewicz, A.; Bishop, J.L. Assessment of Sulfate Sources under Cold Conditions as a Geochemical Proxy for the Origin of Sulfates in the Circumpolar Dunes on Mars. Minerals 2021, 11, 507. https://doi.org/10.3390/min11050507

AMA Style

Szynkiewicz A, Bishop JL. Assessment of Sulfate Sources under Cold Conditions as a Geochemical Proxy for the Origin of Sulfates in the Circumpolar Dunes on Mars. Minerals. 2021; 11(5):507. https://doi.org/10.3390/min11050507

Chicago/Turabian Style

Szynkiewicz, Anna, and Janice L. Bishop. 2021. "Assessment of Sulfate Sources under Cold Conditions as a Geochemical Proxy for the Origin of Sulfates in the Circumpolar Dunes on Mars" Minerals 11, no. 5: 507. https://doi.org/10.3390/min11050507

APA Style

Szynkiewicz, A., & Bishop, J. L. (2021). Assessment of Sulfate Sources under Cold Conditions as a Geochemical Proxy for the Origin of Sulfates in the Circumpolar Dunes on Mars. Minerals, 11(5), 507. https://doi.org/10.3390/min11050507

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