Fe-rich X-ray amorphous material records past climate and persistence of water on Mars
Abstract X-ray amorphous material comprises 15-73 wt.% of sedimentary rocks and eolian sediments in Gale crater. This material is variably siliceous and iron rich but aluminum poor. The presence of volatiles is consistent with the existence of incipient weathering products. To better understand the...
| Published in: | Communications Earth & Environment |
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| Main Authors: | , , , , , , |
| Format: | Article |
| Language: | English |
| Published: |
Nature Portfolio
2024-07-01
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| Online Access: | https://doi.org/10.1038/s43247-024-01495-4 |
| _version_ | 1850395595774099456 |
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| author | Anthony D. Feldman Elisabeth M. Hausrath Elizabeth B. Rampe Valerie Tu Tanya S. Peretyazhko Christopher DeFelice Thomas Sharp |
| author_facet | Anthony D. Feldman Elisabeth M. Hausrath Elizabeth B. Rampe Valerie Tu Tanya S. Peretyazhko Christopher DeFelice Thomas Sharp |
| author_sort | Anthony D. Feldman |
| collection | DOAJ |
| container_title | Communications Earth & Environment |
| description | Abstract X-ray amorphous material comprises 15-73 wt.% of sedimentary rocks and eolian sediments in Gale crater. This material is variably siliceous and iron rich but aluminum poor. The presence of volatiles is consistent with the existence of incipient weathering products. To better understand the implications of this material for past aqueous conditions on Mars, here we investigate X-ray amorphous material formation and longevity within terrestrial iron rich soils with varying ages and environmental conditions using bulk and selective dissolution methods, X-ray diffraction, and transmission electron microscopy. Results indicate that in situ aqueous alteration is required to concentrate iron into clay-size fraction material. Cooler climates promote the formation and persistence of X-ray amorphous material whereas warmer climates promote the formation of crystalline secondary phases. Iron rich X-ray amorphous material formation and persistence on Mars are therefore consistent with past cool and relatively wet environments followed by long-term cold and dry conditions. |
| format | Article |
| id | doaj-art-e85b16ae4daa4a2bb55a7b7ca645063f |
| institution | Directory of Open Access Journals |
| issn | 2662-4435 |
| language | English |
| publishDate | 2024-07-01 |
| publisher | Nature Portfolio |
| record_format | Article |
| spelling | doaj-art-e85b16ae4daa4a2bb55a7b7ca645063f2025-08-19T22:52:21ZengNature PortfolioCommunications Earth & Environment2662-44352024-07-015111510.1038/s43247-024-01495-4Fe-rich X-ray amorphous material records past climate and persistence of water on MarsAnthony D. Feldman0Elisabeth M. Hausrath1Elizabeth B. Rampe2Valerie Tu3Tanya S. Peretyazhko4Christopher DeFelice5Thomas Sharp6Department of Geosciences, University of Nevada Las VegasDepartment of Geosciences, University of Nevada Las VegasAstromaterials Research and Exploration Science Division, NASA Johnson Space CenterJacobs Technology, NASA Johnson Space CenterJacobs Technology, NASA Johnson Space CenterDepartment of Geosciences, University of Nevada Las VegasSchool of Earth and Space Exploration, Arizona State UniversityAbstract X-ray amorphous material comprises 15-73 wt.% of sedimentary rocks and eolian sediments in Gale crater. This material is variably siliceous and iron rich but aluminum poor. The presence of volatiles is consistent with the existence of incipient weathering products. To better understand the implications of this material for past aqueous conditions on Mars, here we investigate X-ray amorphous material formation and longevity within terrestrial iron rich soils with varying ages and environmental conditions using bulk and selective dissolution methods, X-ray diffraction, and transmission electron microscopy. Results indicate that in situ aqueous alteration is required to concentrate iron into clay-size fraction material. Cooler climates promote the formation and persistence of X-ray amorphous material whereas warmer climates promote the formation of crystalline secondary phases. Iron rich X-ray amorphous material formation and persistence on Mars are therefore consistent with past cool and relatively wet environments followed by long-term cold and dry conditions.https://doi.org/10.1038/s43247-024-01495-4 |
| spellingShingle | Anthony D. Feldman Elisabeth M. Hausrath Elizabeth B. Rampe Valerie Tu Tanya S. Peretyazhko Christopher DeFelice Thomas Sharp Fe-rich X-ray amorphous material records past climate and persistence of water on Mars |
| title | Fe-rich X-ray amorphous material records past climate and persistence of water on Mars |
| title_full | Fe-rich X-ray amorphous material records past climate and persistence of water on Mars |
| title_fullStr | Fe-rich X-ray amorphous material records past climate and persistence of water on Mars |
| title_full_unstemmed | Fe-rich X-ray amorphous material records past climate and persistence of water on Mars |
| title_short | Fe-rich X-ray amorphous material records past climate and persistence of water on Mars |
| title_sort | fe rich x ray amorphous material records past climate and persistence of water on mars |
| url | https://doi.org/10.1038/s43247-024-01495-4 |
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