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Evidence for perchlorates and the origin of chlorinated hydrocarbons detected by SAM at the Rocknest aeolian deposit in Gale Crater

Identifieur interne : 002369 ( Istex/Corpus ); précédent : 002368; suivant : 002370

Evidence for perchlorates and the origin of chlorinated hydrocarbons detected by SAM at the Rocknest aeolian deposit in Gale Crater

Auteurs : Daniel P. Glavin ; Caroline Freissinet ; Kristen E. Miller ; Jennifer L. Eigenbrode ; Anna E. Brunner ; Arnaud Buch ; Brad Sutter ; P. Douglas Archer Jr. ; Sushil K. Atreya ; William B. Brinckerhoff ; Michel Cabane ; Patrice Coll ; Pamela G. Conrad ; David Coscia ; Jason P. Dworkin ; Heather B. Franz ; John P. Grotzinger ; Laurie A. Leshin ; Mildred G. Martin ; Christopher Mckay ; Douglas W. Ming ; Rafael Navarro-González ; Alexander Pavlov ; Andrew Steele ; Roger E. Summons ; Cyril Szopa ; Samuel Teinturier ; Paul R. Mahaffy

Source :

RBID : ISTEX:C2CC899672662A646B3CBBA3657E69F71AFE2707

Abstract

A single scoop of the Rocknest aeolian deposit was sieved (< 150 µm), and four separate sample portions, each with a mass of ~50 mg, were delivered to individual cups inside the Sample Analysis at Mars (SAM) instrument by the Mars Science Laboratory rover's sample acquisition system. The samples were analyzed separately by the SAM pyrolysis evolved gas and gas chromatograph mass spectrometer analysis modes. Several chlorinated hydrocarbons including chloromethane, dichloromethane, trichloromethane, a chloromethylpropene, and chlorobenzene were identified by SAM above background levels with abundances of ~0.01 to 2.3 nmol. The evolution of the chloromethanes observed during pyrolysis is coincident with the increase in O2 released from the Rocknest sample and the decomposition of a product of N‐methyl‐N‐(tert‐butyldimethylsilyl)‐trifluoroacetamide (MTBSTFA), a chemical whose vapors were released from a derivatization cup inside SAM. The best candidate for the oxychlorine compounds in Rocknest is a hydrated calcium perchlorate (Ca(ClO4)2·nH2O), based on the temperature release of O2 that correlates with the release of the chlorinated hydrocarbons measured by SAM, although other chlorine‐bearing phases are being considered. Laboratory analog experiments suggest that the reaction of Martian chlorine from perchlorate decomposition with terrestrial organic carbon from MTBSTFA during pyrolysis can explain the presence of three chloromethanes and a chloromethylpropene detected by SAM. Chlorobenzene may be attributed to reactions of Martian chlorine released during pyrolysis with terrestrial benzene or toluene derived from 2,6‐diphenylphenylene oxide (Tenax) on the SAM hydrocarbon trap. At this time we do not have definitive evidence to support a nonterrestrial carbon source for these chlorinated hydrocarbons, nor do we exclude the possibility that future SAM analyses will reveal the presence of organic compounds native to the Martian regolith.

Url:
DOI: 10.1002/jgre.20144

Links to Exploration step

ISTEX:C2CC899672662A646B3CBBA3657E69F71AFE2707

Le document en format XML

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<name sortKey="Coscia, David" sort="Coscia, David" uniqKey="Coscia D" first="David" last="Coscia">David Coscia</name>
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<mods:affiliation>Center for Research and Exploration in Space Science & Technology, University of Maryland, Baltimore County, Maryland, Baltimore, USA</mods:affiliation>
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<mods:affiliation>Department of Chemistry, Catholic University of America, District of Columbia, Washington, USA</mods:affiliation>
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<name sortKey="Mckay, Christopher" sort="Mckay, Christopher" uniqKey="Mckay C" first="Christopher" last="Mckay">Christopher Mckay</name>
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<name sortKey="Ming, Douglas W" sort="Ming, Douglas W" uniqKey="Ming D" first="Douglas W." last="Ming">Douglas W. Ming</name>
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<name sortKey="Navarro Onzalez, Rafael" sort="Navarro Onzalez, Rafael" uniqKey="Navarro Onzalez R" first="Rafael" last="Navarro-González">Rafael Navarro-González</name>
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<mods:affiliation>Instituto de Ciencias Nucleares, Universidad Nacional Autónoma de México, Ciudad Universitaria, Mexico City, Mexico</mods:affiliation>
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<name sortKey="Steele, Andrew" sort="Steele, Andrew" uniqKey="Steele A" first="Andrew" last="Steele">Andrew Steele</name>
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<mods:affiliation>Geophysical Laboratory, Carnegie Institution of Washington, District of Columbia, Washington, USA</mods:affiliation>
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<name sortKey="Summons, Roger E" sort="Summons, Roger E" uniqKey="Summons R" first="Roger E." last="Summons">Roger E. Summons</name>
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<mods:affiliation>Department of Earth, Atmospheric and Planetary Sciences, Massachusetts Institute of Technology, Massachusetts, Cambridge, USA</mods:affiliation>
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<name sortKey="Teinturier, Samuel" sort="Teinturier, Samuel" uniqKey="Teinturier S" first="Samuel" last="Teinturier">Samuel Teinturier</name>
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<title level="a" type="main" xml:lang="en">Evidence for perchlorates and the origin of chlorinated hydrocarbons detected by SAM at the Rocknest aeolian deposit in Gale Crater</title>
<author>
<name sortKey="Glavin, Daniel P" sort="Glavin, Daniel P" uniqKey="Glavin D" first="Daniel P." last="Glavin">Daniel P. Glavin</name>
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<mods:affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</mods:affiliation>
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<name sortKey="Freissinet, Caroline" sort="Freissinet, Caroline" uniqKey="Freissinet C" first="Caroline" last="Freissinet">Caroline Freissinet</name>
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<mods:affiliation>NASA Postdoctoral Program, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Miller, Kristen E" sort="Miller, Kristen E" uniqKey="Miller K" first="Kristen E." last="Miller">Kristen E. Miller</name>
<affiliation>
<mods:affiliation>Department of Earth, Atmospheric and Planetary Sciences, Massachusetts Institute of Technology, Massachusetts, Cambridge, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Eigenbrode, Jennifer L" sort="Eigenbrode, Jennifer L" uniqKey="Eigenbrode J" first="Jennifer L." last="Eigenbrode">Jennifer L. Eigenbrode</name>
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<mods:affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Brunner, Anna E" sort="Brunner, Anna E" uniqKey="Brunner A" first="Anna E." last="Brunner">Anna E. Brunner</name>
<affiliation>
<mods:affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Greenbelt, Maryland, USA</mods:affiliation>
</affiliation>
<affiliation>
<mods:affiliation>Center for Research and Exploration in Space Science & Technology, Department of Astronomy, University of Maryland, Maryland, College Park, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Buch, Arnaud" sort="Buch, Arnaud" uniqKey="Buch A" first="Arnaud" last="Buch">Arnaud Buch</name>
<affiliation>
<mods:affiliation>Laboratoire Génie des Procédés et Matériaux, Ecole Centrale Paris, Chatenay‐Malabry, France</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Sutter, Brad" sort="Sutter, Brad" uniqKey="Sutter B" first="Brad" last="Sutter">Brad Sutter</name>
<affiliation>
<mods:affiliation>Jacobs Technology‐ESCG, Houston, Texas, USA</mods:affiliation>
</affiliation>
<affiliation>
<mods:affiliation>Astromaterials Research and Exploration Science Directorate, NASA Johnson Space Center, Texas, Houston, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Archer Jr, P Douglas" sort="Archer Jr, P Douglas" uniqKey="Archer Jr P" first="P. Douglas" last="Archer Jr.">P. Douglas Archer Jr.</name>
<affiliation>
<mods:affiliation>Astromaterials Research and Exploration Science Directorate, NASA Johnson Space Center, Texas, Houston, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Atreya, Sushil K" sort="Atreya, Sushil K" uniqKey="Atreya S" first="Sushil K." last="Atreya">Sushil K. Atreya</name>
<affiliation>
<mods:affiliation>Department of Atmospheric, Oceanic and Space Sciences, University of Michigan, Michigan, Ann Arbor, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Brinckerhoff, William B" sort="Brinckerhoff, William B" uniqKey="Brinckerhoff W" first="William B." last="Brinckerhoff">William B. Brinckerhoff</name>
<affiliation>
<mods:affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Cabane, Michel" sort="Cabane, Michel" uniqKey="Cabane M" first="Michel" last="Cabane">Michel Cabane</name>
<affiliation>
<mods:affiliation>Laboratoire Atmosphères, Milieux, Observations Spatiales, Univ. Pierre et Marie Curie, Univ. Versailles Saint‐Quentin & Centre National de la Recherche Scientifique, Paris, France</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Coll, Patrice" sort="Coll, Patrice" uniqKey="Coll P" first="Patrice" last="Coll">Patrice Coll</name>
<affiliation>
<mods:affiliation>Laboratoire Interuniversitaire des Systèmes Atmosphériques, Univ. Paris‐Est Créteil, Univ. Denis Diderot & CNRS, Créteil, France</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Conrad, Pamela G" sort="Conrad, Pamela G" uniqKey="Conrad P" first="Pamela G." last="Conrad">Pamela G. Conrad</name>
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<mods:affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Coscia, David" sort="Coscia, David" uniqKey="Coscia D" first="David" last="Coscia">David Coscia</name>
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<mods:affiliation>Laboratoire Atmosphères, Milieux, Observations Spatiales, Univ. Pierre et Marie Curie, Univ. Versailles Saint‐Quentin & Centre National de la Recherche Scientifique, Paris, France</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Dworkin, Jason P" sort="Dworkin, Jason P" uniqKey="Dworkin J" first="Jason P." last="Dworkin">Jason P. Dworkin</name>
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<mods:affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Franz, Heather B" sort="Franz, Heather B" uniqKey="Franz H" first="Heather B." last="Franz">Heather B. Franz</name>
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<mods:affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Greenbelt, Maryland, USA</mods:affiliation>
</affiliation>
<affiliation>
<mods:affiliation>Center for Research and Exploration in Space Science & Technology, University of Maryland, Baltimore County, Maryland, Baltimore, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Grotzinger, John P" sort="Grotzinger, John P" uniqKey="Grotzinger J" first="John P." last="Grotzinger">John P. Grotzinger</name>
<affiliation>
<mods:affiliation>Division of Geological and Planetary Sciences, California Institute of Technology, California, Pasadena, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Leshin, Laurie A" sort="Leshin, Laurie A" uniqKey="Leshin L" first="Laurie A." last="Leshin">Laurie A. Leshin</name>
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<mods:affiliation>Department of Earth & Environmental Science and School of Science, Rensselaer Polytechnic Institute, New York, Troy, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Martin, Mildred G" sort="Martin, Mildred G" uniqKey="Martin M" first="Mildred G." last="Martin">Mildred G. Martin</name>
<affiliation>
<mods:affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Greenbelt, Maryland, USA</mods:affiliation>
</affiliation>
<affiliation>
<mods:affiliation>Department of Chemistry, Catholic University of America, District of Columbia, Washington, USA</mods:affiliation>
</affiliation>
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<author>
<name sortKey="Mckay, Christopher" sort="Mckay, Christopher" uniqKey="Mckay C" first="Christopher" last="Mckay">Christopher Mckay</name>
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<mods:affiliation>Space Science Division, NASA Ames Research Center, California, Moffett Field, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Ming, Douglas W" sort="Ming, Douglas W" uniqKey="Ming D" first="Douglas W." last="Ming">Douglas W. Ming</name>
<affiliation>
<mods:affiliation>Astromaterials Research and Exploration Science Directorate, NASA Johnson Space Center, Texas, Houston, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Navarro Onzalez, Rafael" sort="Navarro Onzalez, Rafael" uniqKey="Navarro Onzalez R" first="Rafael" last="Navarro-González">Rafael Navarro-González</name>
<affiliation>
<mods:affiliation>Instituto de Ciencias Nucleares, Universidad Nacional Autónoma de México, Ciudad Universitaria, Mexico City, Mexico</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Pavlov, Alexander" sort="Pavlov, Alexander" uniqKey="Pavlov A" first="Alexander" last="Pavlov">Alexander Pavlov</name>
<affiliation>
<mods:affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Steele, Andrew" sort="Steele, Andrew" uniqKey="Steele A" first="Andrew" last="Steele">Andrew Steele</name>
<affiliation>
<mods:affiliation>Geophysical Laboratory, Carnegie Institution of Washington, District of Columbia, Washington, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Summons, Roger E" sort="Summons, Roger E" uniqKey="Summons R" first="Roger E." last="Summons">Roger E. Summons</name>
<affiliation>
<mods:affiliation>Department of Earth, Atmospheric and Planetary Sciences, Massachusetts Institute of Technology, Massachusetts, Cambridge, USA</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Szopa, Cyril" sort="Szopa, Cyril" uniqKey="Szopa C" first="Cyril" last="Szopa">Cyril Szopa</name>
<affiliation>
<mods:affiliation>Laboratoire Atmosphères, Milieux, Observations Spatiales, Univ. Pierre et Marie Curie, Univ. Versailles Saint‐Quentin & Centre National de la Recherche Scientifique, Paris, France</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Teinturier, Samuel" sort="Teinturier, Samuel" uniqKey="Teinturier S" first="Samuel" last="Teinturier">Samuel Teinturier</name>
<affiliation>
<mods:affiliation>Laboratoire Atmosphères, Milieux, Observations Spatiales, Univ. Pierre et Marie Curie, Univ. Versailles Saint‐Quentin & Centre National de la Recherche Scientifique, Paris, France</mods:affiliation>
</affiliation>
</author>
<author>
<name sortKey="Mahaffy, Paul R" sort="Mahaffy, Paul R" uniqKey="Mahaffy P" first="Paul R." last="Mahaffy">Paul R. Mahaffy</name>
<affiliation>
<mods:affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</mods:affiliation>
</affiliation>
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<title level="j">Journal of Geophysical Research: Planets</title>
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<div type="abstract">A single scoop of the Rocknest aeolian deposit was sieved (< 150 µm), and four separate sample portions, each with a mass of ~50 mg, were delivered to individual cups inside the Sample Analysis at Mars (SAM) instrument by the Mars Science Laboratory rover's sample acquisition system. The samples were analyzed separately by the SAM pyrolysis evolved gas and gas chromatograph mass spectrometer analysis modes. Several chlorinated hydrocarbons including chloromethane, dichloromethane, trichloromethane, a chloromethylpropene, and chlorobenzene were identified by SAM above background levels with abundances of ~0.01 to 2.3 nmol. The evolution of the chloromethanes observed during pyrolysis is coincident with the increase in O2 released from the Rocknest sample and the decomposition of a product of N‐methyl‐N‐(tert‐butyldimethylsilyl)‐trifluoroacetamide (MTBSTFA), a chemical whose vapors were released from a derivatization cup inside SAM. The best candidate for the oxychlorine compounds in Rocknest is a hydrated calcium perchlorate (Ca(ClO4)2·nH2O), based on the temperature release of O2 that correlates with the release of the chlorinated hydrocarbons measured by SAM, although other chlorine‐bearing phases are being considered. Laboratory analog experiments suggest that the reaction of Martian chlorine from perchlorate decomposition with terrestrial organic carbon from MTBSTFA during pyrolysis can explain the presence of three chloromethanes and a chloromethylpropene detected by SAM. Chlorobenzene may be attributed to reactions of Martian chlorine released during pyrolysis with terrestrial benzene or toluene derived from 2,6‐diphenylphenylene oxide (Tenax) on the SAM hydrocarbon trap. At this time we do not have definitive evidence to support a nonterrestrial carbon source for these chlorinated hydrocarbons, nor do we exclude the possibility that future SAM analyses will reveal the presence of organic compounds native to the Martian regolith.</div>
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<name>Cyril Szopa</name>
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<name>Samuel Teinturier</name>
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<forename type="first">Mildred G.</forename>
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<title level="j">Journal of Geophysical Research: Planets</title>
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<p>A single scoop of the Rocknest aeolian deposit was sieved (< 150 µm), and four separate sample portions, each with a mass of ~50 mg, were delivered to individual cups inside the Sample Analysis at Mars (SAM) instrument by the Mars Science Laboratory rover's sample acquisition system. The samples were analyzed separately by the SAM pyrolysis evolved gas and gas chromatograph mass spectrometer analysis modes. Several chlorinated hydrocarbons including chloromethane, dichloromethane, trichloromethane, a chloromethylpropene, and chlorobenzene were identified by SAM above background levels with abundances of ~0.01 to 2.3 nmol. The evolution of the chloromethanes observed during pyrolysis is coincident with the increase in O2 released from the Rocknest sample and the decomposition of a product of N‐methyl‐N‐(tert‐butyldimethylsilyl)‐trifluoroacetamide (MTBSTFA), a chemical whose vapors were released from a derivatization cup inside SAM. The best candidate for the oxychlorine compounds in Rocknest is a hydrated calcium perchlorate (Ca(ClO4)2·nH2O), based on the temperature release of O2 that correlates with the release of the chlorinated hydrocarbons measured by SAM, although other chlorine‐bearing phases are being considered. Laboratory analog experiments suggest that the reaction of Martian chlorine from perchlorate decomposition with terrestrial organic carbon from MTBSTFA during pyrolysis can explain the presence of three chloromethanes and a chloromethylpropene detected by SAM. Chlorobenzene may be attributed to reactions of Martian chlorine released during pyrolysis with terrestrial benzene or toluene derived from 2,6‐diphenylphenylene oxide (Tenax) on the SAM hydrocarbon trap. At this time we do not have definitive evidence to support a nonterrestrial carbon source for these chlorinated hydrocarbons, nor do we exclude the possibility that future SAM analyses will reveal the presence of organic compounds native to the Martian regolith.</p>
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<p>Perchlorates and chlorinated hydrocarbons detected by SAM at Rocknest Chlorohydrocarbons produced from terrestrial organic carbon and Martian chlorine No definitive evidence of Martian organic carbon at Rocknest</p>
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<country>Mexico</country>
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<orgDiv>Geophysical Laboratory</orgDiv>
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<country>USA</country>
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<keyword xml:id="jgre20144-kwd-0002">Sample Analysis at Mars</keyword>
<keyword xml:id="jgre20144-kwd-0003">Rocknest soil</keyword>
<keyword xml:id="jgre20144-kwd-0004">chlorohydrocarbons</keyword>
<keyword xml:id="jgre20144-kwd-0005">perchlorates</keyword>
<keyword xml:id="jgre20144-kwd-0006">MTBSTFA</keyword>
</keywordGroup>
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<abstract type="main">
<p label="1">A single scoop of the Rocknest aeolian deposit was sieved (< 150 µm), and four separate sample portions, each with a mass of ~50 mg, were delivered to individual cups inside the Sample Analysis at Mars (SAM) instrument by the Mars Science Laboratory rover's sample acquisition system. The samples were analyzed separately by the SAM pyrolysis evolved gas and gas chromatograph mass spectrometer analysis modes. Several chlorinated hydrocarbons including chloromethane, dichloromethane, trichloromethane, a chloromethylpropene, and chlorobenzene were identified by SAM above background levels with abundances of ~0.01 to 2.3 nmol. The evolution of the chloromethanes observed during pyrolysis is coincident with the increase in O
<sub>2</sub>
released from the Rocknest sample and the decomposition of a product of
<i>N</i>
‐methyl‐
<i>N</i>
‐(
<i>tert</i>
‐butyldimethylsilyl)‐trifluoroacetamide (MTBSTFA), a chemical whose vapors were released from a derivatization cup inside SAM. The best candidate for the oxychlorine compounds in Rocknest is a hydrated calcium perchlorate (Ca(ClO
<sub>4</sub>
)
<sub>2</sub>
·nH
<sub>2</sub>
O), based on the temperature release of O
<sub>2</sub>
that correlates with the release of the chlorinated hydrocarbons measured by SAM, although other chlorine‐bearing phases are being considered. Laboratory analog experiments suggest that the reaction of Martian chlorine from perchlorate decomposition with terrestrial organic carbon from MTBSTFA during pyrolysis can explain the presence of three chloromethanes and a chloromethylpropene detected by SAM. Chlorobenzene may be attributed to reactions of Martian chlorine released during pyrolysis with terrestrial benzene or toluene derived from 2,6‐diphenylphenylene oxide (Tenax) on the SAM hydrocarbon trap. At this time we do not have definitive evidence to support a nonterrestrial carbon source for these chlorinated hydrocarbons, nor do we exclude the possibility that future SAM analyses will reveal the presence of organic compounds native to the Martian regolith.</p>
</abstract>
<abstract type="short">
<title type="main">Key Points</title>
<p>
<list style="bulleted" xml:id="jgre20144-list-0001">
<listItem xml:id="jgre20144-li-0001">Perchlorates and chlorinated hydrocarbons detected by SAM at Rocknest</listItem>
<listItem xml:id="jgre20144-li-0002">Chlorohydrocarbons produced from terrestrial organic carbon and Martian chlorine</listItem>
<listItem xml:id="jgre20144-li-0003">No definitive evidence of Martian organic carbon at Rocknest</listItem>
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<title>Evidence for perchlorates and the origin of chlorinated hydrocarbons detected by SAM at the Rocknest aeolian deposit in Gale Crater</title>
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<titleInfo type="abbreviated" lang="en">
<title>EVIDENCE FOR PERCHLORATES AT ROCKNEST</title>
</titleInfo>
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<title>Evidence for perchlorates and the origin of chlorinated hydrocarbons detected by SAM at the Rocknest aeolian deposit in Gale Crater</title>
</titleInfo>
<name type="personal">
<namePart type="given">Daniel P.</namePart>
<namePart type="family">Glavin</namePart>
<affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</affiliation>
<affiliation>E-mail: daniel.p.glavin@nasa.gov</affiliation>
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</name>
<name type="personal">
<namePart type="given">Caroline</namePart>
<namePart type="family">Freissinet</namePart>
<affiliation>NASA Postdoctoral Program, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</affiliation>
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<roleTerm type="text">author</roleTerm>
</role>
</name>
<name type="personal">
<namePart type="given">Kristen E.</namePart>
<namePart type="family">Miller</namePart>
<affiliation>Department of Earth, Atmospheric and Planetary Sciences, Massachusetts Institute of Technology, Massachusetts, Cambridge, USA</affiliation>
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<roleTerm type="text">author</roleTerm>
</role>
</name>
<name type="personal">
<namePart type="given">Jennifer L.</namePart>
<namePart type="family">Eigenbrode</namePart>
<affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</affiliation>
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<namePart type="given">Anna E.</namePart>
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<affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Greenbelt, Maryland, USA</affiliation>
<affiliation>Center for Research and Exploration in Space Science & Technology, Department of Astronomy, University of Maryland, Maryland, College Park, USA</affiliation>
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<name type="personal">
<namePart type="given">Arnaud</namePart>
<namePart type="family">Buch</namePart>
<affiliation>Laboratoire Génie des Procédés et Matériaux, Ecole Centrale Paris, Chatenay‐Malabry, France</affiliation>
<role>
<roleTerm type="text">author</roleTerm>
</role>
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<name type="personal">
<namePart type="given">Brad</namePart>
<namePart type="family">Sutter</namePart>
<affiliation>Jacobs Technology‐ESCG, Houston, Texas, USA</affiliation>
<affiliation>Astromaterials Research and Exploration Science Directorate, NASA Johnson Space Center, Texas, Houston, USA</affiliation>
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<namePart type="given">P. Douglas</namePart>
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<affiliation>Astromaterials Research and Exploration Science Directorate, NASA Johnson Space Center, Texas, Houston, USA</affiliation>
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<namePart type="given">Sushil K.</namePart>
<namePart type="family">Atreya</namePart>
<affiliation>Department of Atmospheric, Oceanic and Space Sciences, University of Michigan, Michigan, Ann Arbor, USA</affiliation>
<role>
<roleTerm type="text">author</roleTerm>
</role>
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<name type="personal">
<namePart type="given">William B.</namePart>
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<affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</affiliation>
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<namePart type="given">Michel</namePart>
<namePart type="family">Cabane</namePart>
<affiliation>Laboratoire Atmosphères, Milieux, Observations Spatiales, Univ. Pierre et Marie Curie, Univ. Versailles Saint‐Quentin & Centre National de la Recherche Scientifique, Paris, France</affiliation>
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<namePart type="family">Coll</namePart>
<affiliation>Laboratoire Interuniversitaire des Systèmes Atmosphériques, Univ. Paris‐Est Créteil, Univ. Denis Diderot & CNRS, Créteil, France</affiliation>
<role>
<roleTerm type="text">author</roleTerm>
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<name type="personal">
<namePart type="given">Pamela G.</namePart>
<namePart type="family">Conrad</namePart>
<affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Maryland, Greenbelt, USA</affiliation>
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<roleTerm type="text">author</roleTerm>
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<name type="personal">
<namePart type="given">David</namePart>
<namePart type="family">Coscia</namePart>
<affiliation>Laboratoire Atmosphères, Milieux, Observations Spatiales, Univ. Pierre et Marie Curie, Univ. Versailles Saint‐Quentin & Centre National de la Recherche Scientifique, Paris, France</affiliation>
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<namePart type="given">Heather B.</namePart>
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<affiliation>Solar System Exploration Division, NASA Goddard Space Flight Center, Greenbelt, Maryland, USA</affiliation>
<affiliation>Center for Research and Exploration in Space Science & Technology, University of Maryland, Baltimore County, Maryland, Baltimore, USA</affiliation>
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<name type="personal">
<namePart type="given">John P.</namePart>
<namePart type="family">Grotzinger</namePart>
<affiliation>Division of Geological and Planetary Sciences, California Institute of Technology, California, Pasadena, USA</affiliation>
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<namePart type="given">Laurie A.</namePart>
<namePart type="family">Leshin</namePart>
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<affiliation>Department of Chemistry, Catholic University of America, District of Columbia, Washington, USA</affiliation>
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<namePart type="given">Roger E.</namePart>
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<namePart type="given">Cyril</namePart>
<namePart type="family">Szopa</namePart>
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<namePart type="given">Samuel</namePart>
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<namePart type="given">Paul R.</namePart>
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<edition>Glavin, D. P., et al. (2013), Evidence for perchlorates and the origin of chlorinated hydrocarbons detected by SAM at the Rocknest aeolian deposit in Gale Crater, J. Geophys. Res. Planets, 118, 1955–1973, doi:10.1002/jgre.20144.</edition>
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<abstract>A single scoop of the Rocknest aeolian deposit was sieved (< 150 µm), and four separate sample portions, each with a mass of ~50 mg, were delivered to individual cups inside the Sample Analysis at Mars (SAM) instrument by the Mars Science Laboratory rover's sample acquisition system. The samples were analyzed separately by the SAM pyrolysis evolved gas and gas chromatograph mass spectrometer analysis modes. Several chlorinated hydrocarbons including chloromethane, dichloromethane, trichloromethane, a chloromethylpropene, and chlorobenzene were identified by SAM above background levels with abundances of ~0.01 to 2.3 nmol. The evolution of the chloromethanes observed during pyrolysis is coincident with the increase in O2 released from the Rocknest sample and the decomposition of a product of N‐methyl‐N‐(tert‐butyldimethylsilyl)‐trifluoroacetamide (MTBSTFA), a chemical whose vapors were released from a derivatization cup inside SAM. The best candidate for the oxychlorine compounds in Rocknest is a hydrated calcium perchlorate (Ca(ClO4)2·nH2O), based on the temperature release of O2 that correlates with the release of the chlorinated hydrocarbons measured by SAM, although other chlorine‐bearing phases are being considered. Laboratory analog experiments suggest that the reaction of Martian chlorine from perchlorate decomposition with terrestrial organic carbon from MTBSTFA during pyrolysis can explain the presence of three chloromethanes and a chloromethylpropene detected by SAM. Chlorobenzene may be attributed to reactions of Martian chlorine released during pyrolysis with terrestrial benzene or toluene derived from 2,6‐diphenylphenylene oxide (Tenax) on the SAM hydrocarbon trap. At this time we do not have definitive evidence to support a nonterrestrial carbon source for these chlorinated hydrocarbons, nor do we exclude the possibility that future SAM analyses will reveal the presence of organic compounds native to the Martian regolith.</abstract>
<abstract type="short">Perchlorates and chlorinated hydrocarbons detected by SAM at Rocknest Chlorohydrocarbons produced from terrestrial organic carbon and Martian chlorine No definitive evidence of Martian organic carbon at Rocknest</abstract>
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<start>1955</start>
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