Title of article
Isotopic and geochemical investigation of two distinct Mars analog environments using evolved gas techniques in Svalbard, Norway
Author/Authors
Stern، نويسنده , , Jennifer C. and McAdam، نويسنده , , Amy C. and Ten Kate، نويسنده , , Inge L. and Bish، نويسنده , , David L. and Blake، نويسنده , , David F. and Morris، نويسنده , , Richard V. and Bowden، نويسنده , , Roxane and Fogel، نويسنده , , Marilyn L. and Glamoclija، نويسنده , , Mihaela and Mahaffy، نويسنده , , Paul R. and Steele، نويسنده , , Andrew and Amundsen، نويسنده , , Hans E.F and Blake، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2013
Pages
12
From page
297
To page
308
Abstract
The 2010 Arctic Mars Analog Svalbard Expedition (AMASE) investigated two distinct geologic settings on Svalbard, using methodologies and techniques to be deployed on Mars Science Laboratory (MSL). AMASE-related research comprises both analyses conducted during the expedition and further analyses of collected samples using laboratory facilities at a variety of institutions. The Sample Analysis at Mars (SAM) instrument suite on MSL includes pyrolysis ovens, a gas-processing manifold, a quadrupole mass spectrometer (QMS), several gas chromatography columns, and a Tunable Laser Spectrometer (TLS). An integral part of SAM development is the deployment of SAM-like instrumentation in the field. During AMASE 2010, two parts of SAM participated as stand-alone instruments. A Hiden Evolved Gas Analysis-Mass Spectrometer (EGA-QMS) system represented the EGA-QMS component of SAM, and a Picarro Cavity Ring Down Spectrometer (EGA-CRDS), represented the EGA-TLS component of SAM. A field analog of CheMin, the XRD/XRF on MSL, was also deployed as part of this field campaign. Carbon isotopic measurements of CO2 evolved during thermal decomposition of carbonates were used together with EGA-QMS geochemical data, mineral composition information and contextual observations made during sample collection to distinguish carbonates formation associated with chemosynthetic activity at a fossil methane seep from abiotic processes forming carbonates associated with subglacial basaltic eruptions. Carbon and oxygen isotopes of the basalt-hosted carbonates suggest cryogenic carbonate formation, though more research is necessary to clarify the history of these rocks.
Journal title
Icarus
Serial Year
2013
Journal title
Icarus
Record number
2379884
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