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Assessing the Behavior of Typically Lithophile Elements Under Highly Reducing Conditions Relevant to the Planet MercuryWith the data returned from the MErcury Surface, Space ENvironment, GEochemistry, and Ranging (MESSENGER) mission, there are now numerous constraints on the physical and chemical properties of Mercury, including its surface composition (e.g., Evans et al. 2012; Nittler et al. 201 l; Peplowski et al. 2012; Weider et al. 2012). The high Sand low FeO contents observed from MESSENGER on the planet's surface suggests a low oxygen fugacity of the present planetary materials. Estimates of the oxygen fugacity for Mercurian magmas are approximately 3- 7 log units below the Iron-Wiistite (Fe-FeO) oxygen buffer (McCubbin et al. 2012; Zolotov et al. 2013), several orders of magnitude more reducing than other terrestrial bodies we have data from such as the Earth, Moon, or Mars (Herd 2008; Sharp, McCubbin, and Shearer 2013; Wadhwa 2008). Most of our understanding of elemental partitioning behavior comes from observations made on terrestrial rocks, but Mercury's oxygen fugacity is far outside the conditions of those samples. With limited oxygen available, lithophile elements may instead exhibit chalcophile, halophile, or siderophile behaviors. Furthermore, very few natural samples of rocks that formed under reducing conditions are available in our collections (e.g., enstatite chondrites, achondrites, aubrites). The goal of this study is to conduct experiments at high pressure and temperature conditions to determine the elemental partitioning behavior of typically lithophile elements as a function of decreasing oxygen fugacity.
Document ID
20170007400
Acquisition Source
Johnson Space Center
Document Type
Conference Paper
Authors
Rowland, Rick, II
(Jacobs Technologies Engineering Science Contract Group Houston, TX, United States)
Vander Kaaden, Kathleen E.
(Jacobs Technologies Engineering Science Contract Group Houston, TX, United States)
McCubbin, Francis M.
(NASA Johnson Space Center Houston, TX, United States)
Danielson, Lisa R.
(Jacobs Technologies Engineering Science Contract Group Houston, TX, United States)
Date Acquired
August 7, 2017
Publication Date
July 9, 2017
Subject Category
Geophysics
Report/Patent Number
JSC-CN-39784
Report Number: JSC-CN-39784
Meeting Information
Meeting: Consortium for Materials Properties Research in Earth Sciences (COMPRES 2017) Annual Meeting
Location: Sante Fe, NM
Country: United States
Start Date: July 9, 2017
End Date: July 12, 2017
Sponsors: National Science Foundation
Distribution Limits
Public
Copyright
Public Use Permitted.
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