Arid
DOI10.1017/S1473550411000115
Mineralogical, chemical, organic and microbial properties of subsurface soil cores from Mars Desert Research Station (Utah, USA): Phyllosilicate and sulfate analogues to Mars mission landing sites
Stoker, Carol R.1; Clarke, Jonathan2,3; Direito, Susana O. L.4; Blake, David1; Martin, Kevin R.5,6; Zavaleta, Jhony1; Foing, Bernard4,7
通讯作者Stoker, Carol R.
来源期刊INTERNATIONAL JOURNAL OF ASTROBIOLOGY
ISSN1473-5504
EISSN1475-3006
出版年2011
卷号10期号:3页码:269-289
英文摘要

We collected and analysed soil cores from four geologic units surrounding Mars Desert Research Station (MDRS) Utah, USA, including Mancos Shale, Dakota Sandstone, Morrison formation (Brushy Basin member) and Summerville formation. The area is an important geochemical and morphological analogue to terrains on Mars. Soils were analysed for mineralogy by a Terra X-ray diffractometer (XRD), a field version of the CheMin instrument on the Mars Science Laboratory (MSL) mission (2012 landing). Soluble ion chemistry, total organic content and identity and distribution of microbial populations were also determined. The Terra data reveal that Mancos and Morrison soils are rich in phyllosilicates similar to those observed on Mars from orbital measurements (montmorillonite, nontronite and illite). Evaporite minerals observed include gypsum, thenardite, polyhalite and calcite. Soil chemical analysis shows sulfate the dominant anion in all soils and SO4>>CO3, as on Mars. The cation pattern Na>Ca>Mg is seen in all soils except for the Summerville where Ca>Na. In all soils, SO4 correlates with Na, suggesting sodium sulfates are the dominant phase. Oxidizable organics are low in all soils and range from a high of 0.7% in the Mancos samples to undetectable at a detection limit of 0.1% in the Morrison soils. Minerals rich in chromium and vanadium were identified in Morrison soils that result from diagenetic replacement of organic compounds. Depositional environment, geologic history and mineralogy all affect the ability to preserve and detect organic compounds. Subsurface biosphere populations were revealed to contain organisms from all three domains (Archaea, Bacteria and Eukarya) with cell density between 3.0x10(6) and 1.8x10(7) cells ml(-1) at the deepest depth. These measurements are analogous to data that could be obtained on future robotic or human Mars missions and results are relevant to the MSL mission that will investigate phyllosilicates on Mars. Received 20 December 2010, accepted 23 February 2011, first published online 8 April 2011


英文关键词Mars Science Lander CheMin instrument Mars Analogue MDRS Utah clay minerals organics subsurface biology
类型Article
语种英语
国家USA ; Australia ; Netherlands
收录类别SCI-E
WOS记录号WOS:000291609600011
WOS关键词GRADIENT GEL-ELECTROPHORESIS ; MERIDIANI-PLANUM ; MANCOS SHALE ; MORRISON FORMATION ; SOUTHERN UTAH ; ASTROBIOLOGY ; HEMATITE ; COLORADO ; DEPOSITS ; SURFACE
WOS类目Astronomy & Astrophysics ; Biology ; Geosciences, Multidisciplinary
WOS研究方向Astronomy & Astrophysics ; Life Sciences & Biomedicine - Other Topics ; Geology
资源类型期刊论文
条目标识符http://119.78.100.177/qdio/handle/2XILL650/168576
作者单位1.NASA, Ames Res Ctr, Div Space Sci, Moffett Field, CA 94035 USA;
2.Australian Ctr Astrobiol, Sydney, NSW, Australia;
3.Mars Soc Australia, Monash, ACT 2904, Australia;
4.Vrije Univ Amsterdam, Fac Earth & Life Sci, NL-1081 HV Amsterdam, Netherlands;
5.NASA, Ames Res Ctr, Program Anal, Moffett Field, CA 94035 USA;
6.NASA, Ames Res Ctr, Business Integrat Div, Moffett Field, CA 94035 USA;
7.European Space Agcy, ESTEC SRE S, NL-2200 AG Noordwijk, Netherlands
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Stoker, Carol R.,Clarke, Jonathan,Direito, Susana O. L.,et al. Mineralogical, chemical, organic and microbial properties of subsurface soil cores from Mars Desert Research Station (Utah, USA): Phyllosilicate and sulfate analogues to Mars mission landing sites[J],2011,10(3):269-289.
APA Stoker, Carol R..,Clarke, Jonathan.,Direito, Susana O. L..,Blake, David.,Martin, Kevin R..,...&Foing, Bernard.(2011).Mineralogical, chemical, organic and microbial properties of subsurface soil cores from Mars Desert Research Station (Utah, USA): Phyllosilicate and sulfate analogues to Mars mission landing sites.INTERNATIONAL JOURNAL OF ASTROBIOLOGY,10(3),269-289.
MLA Stoker, Carol R.,et al."Mineralogical, chemical, organic and microbial properties of subsurface soil cores from Mars Desert Research Station (Utah, USA): Phyllosilicate and sulfate analogues to Mars mission landing sites".INTERNATIONAL JOURNAL OF ASTROBIOLOGY 10.3(2011):269-289.
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