Correlated compositional and mineralogical investigations at the Chang′e-3 landing site

1,2,3Zongcheng Lin et al. (>10)*
1Shandong Provincial Key Laboratory of Optical Astronomy and Solar-Terrestrial Environment, Institute of Space Sciences, Shandong University, Weihai 264209, China
2Department of Earth & Planetary Sciences and McDonnell Center for the Space Sciences, Washington University, St Louis, Missouri 63130, USA
3Key Laboratory of Lunar and Deep Space Exploration, National Astronomical Observatories, Chinese Academy of Sciences, Beijing 100012, China
*Find the extensive, full author and affiliation list on the publishers website

We currently do not have a copyright agreement with this publisher and cannot display the abstract here

Reference
Lin Z et al. (2015) Correlated compositional and mineralogical investigations at the Chang′e-3 landing site. Nature Communications 6,8880
Link to Article [doi:10.1038/ncomms9880]

Correlated analysis of chemical variations with spectroscopic features of the K-Na jarosite solid solutions relevant to Mars

1,2Zongcheng Ling, 1Fengke Cao, 1Yuheng Ni, 1Zhongchen Wu, 1Jiang Zhang, 1Bo Li
1Shandong Provincial Key Laboratory of Optical Astronomy & Solar-Terrestrial Environment, Institute of Space Sciences, Shandong University, Weihai 264209, China
2Key Laboratory of Lunar and Deep Space Exploration, Chinese Academy of Sciences, Beijing 100012, China

Detailed chemical, structural and spectroscopic properties of jarosite solid solution minerals are key information for their potential discoveries by future remote sensing and in-situ detections on Mars. We successfully synthesized seven homogeneous K-Na jarosite solid solutions under hydrothermal conditions at 140°C, whose phase identifications and chemical compositions are confirmed by X-ray diffraction (XRD) and inductively coupled plasma mass spectrometry (ICP-MS). The chemical ratios of K/(K+Na) in jarosite solid solutions lead to systematic shifts of their characteristic Raman peaks ν1 (SO4)2− (from 1006 to 1011.3 cm−1), ν3 (SO4)2− (from 1100.6 to 1111.2 cm−1), ν2 (SO4)2− (from 434.2 to 444.8 cm−1) with the increase of Na content. While the OH stretching mode decreases with even larger peak position variations (e.g., ∼3410 cm−1 peak shifts from 3410.5 to 3385.7 cm−1) as the K-Na jarosite solid solutions are enriched in Na content. Raman spectroscopic measurements of the seven K-Na jarosite solid solutions enabled us to build a calibration that uses Raman peak positions to estimate K-Na variation in jarosite, which is the key step for their possible applications in the future Raman applications on Mars’ missions (e.g., ExoMars and Mars 2020 missions). The band assignments and compositional related variations of their XRD, near-infrared (NIR) and mid-infrared (MIR) spectra also provide informative clues for identifying the jarosite minerals and inferring their composition during Martian in-situ and remote sensing measurements.

Reference
Ling Z,Cao F,Ni Y,Wu Z,Jiang Zhanga,Li B (2016) Correlated analysis of chemical variations with spectroscopic features of the K-Na jarosite solid solutions relevant to Mars. Icarus (in Press)
Link to Article [doi:10.1016/j.icarus.2016.01.028]
Copyright Elsevier

Petrography and classification of NWA 7402: A new sulfide-rich unequilibrated ordinary chondrite

1Christine E. Jilly-Rehak, 2Gary R. Huss, 3Lydie Bonal, 4Eric Twelker
1Department of Geology and Geophysics, University of Hawai‘i at Mānoa, 1680 East-West Road, POST 517A, Honolulu, HI 96822, USA
2Hawai‘i Institute of Geophysics and Planetology, University of Hawai‘i at Mānoa, Honolulu, HI, USA
3Institut de Planétologie et d’Astrophysique de Grenoble, Grenoble, France
4The Meteorite Market, Port Townsend, WA, USA

We classify a new chondritic find Northwest Africa (NWA) 7402. This meteorite is highly unequilibrated, and is therefore potentially significant for the study of primitive Solar System materials. Mineralogy, mineral chemistry, and modal abundances of minerals indicate that NWA 7402 is most likely an L chondrite. However, the specimen contains a higher abundance of sulfide than commonly seen in ordinary chondrites. The structural order of organic matter in the matrix and the chromium content of Fe-rich olivine grains indicate a petrologic type of 3.1. NWA 7402 largely escaped thermal metamorphism, and secondary phases formed by aqueous alteration are rare to absent. Minor planar fractures and undulatory extinction of olivine grains suggest that NWA 7402 experienced shock up to stage 2 or 3. Terrestrial weathering is heterogeneous in the specimen; much of the stone’s exterior shows substantial Fe oxidation (weathering grade 2), while some parts of the interior remain relatively fresh (weathering grade 1). NWA 7402 has some unusual features that should be investigated further. The sulfide abundance is higher than reported sulfide contents for other L chondrites, and the chromium content of the olivines does not fall on the trend established for unequilibrated ordinary chondrites by Grossman and Brearley (2005).

Reference
Jilly-Rehak CE, Huss GR, Bonal L, Twelker E (2016) Petrography and classification of NWA 7402: A new sulfide-rich unequilibrated ordinary chondrite. Chemie der Erde (in Press)
Link to Article [doi:10.1016/j.chemer.2016.01.001]
Copyright Elsevier

Petrographic and geochemical characterization of the granitic rocks of the Araguainha impact crater, Brazil

1Dailto Silva, 2Cristiano Lana,1Carlos Roberto de Souza Filho
1Department of Geology and Natural Resources, University of Campinas, Sao Paulo, Brazil
2Department of Geology (DEGEO), Federal University of Ouro Preto (UFOP), Minas Gerais, Brazil

Petrographic and geochemical data obtained on the Araguainha impact crater (Goiás/Mato Grosso States, Brazil) indicate the existence of several molten products that originated during impact-induced congruent melting of an alkali-granite exposed in the inner part of the central uplift of the structure. Although previous studies have described these melts to some extent, there is no detailed discussion on the petrographic and geochemical variability in the granite and its impactogenic derivatives, and therefore, little is known about the geochemical behavior and mobility of trace elements during its fusion in the central part of the Araguainha crater. This paper demonstrates that the preserved granitoid exposed in the core of the structure is a magnesium-rich granite, similar to postcollisional, A-type granites, also found in terrains outside the Araguainha crater, in the Brasília orogenic belt. The molten products are texturally distinct and different from the original rock, but have very similar geochemical composition, making it difficult to separate these lithotypes based on concentrations of major and minor elements. This also applies for trace and rare earth elements (REE), thus indicating a high degree of homogenization during impact-induced congruent melting under high pressure and postshock temperature conditions. Petrographic observations, along with geochemical data, indicate that melting occurs selectively, where some of the elements are transported with the melt. Simultaneously, there is an effective dissolution of the rock (granite), which leads to entrainment of the most resistant solid phases (intact or partially molten minerals) into the melt. Minerals more resistant to melting, such as quartz and oxides, contribute substantially to a chemical balance between the preserved granite and the fusion products generated during the meteoritic impact.

Reference
Silva D, Lana C, de Souza Filho CB (2016) Petrographic and geochemical characterization of the granitic rocks of the Araguainha impact crater, Brazil. Meteoritics & Planetary Science (in Press)
Link to Article [DOI: 10.1111/maps.12601]
Published by arrangement with John Wiley & Sons

Coeval ages of Australasian, Central American and Western Canadian tektites reveal multiple impacts 790 ka ago

1,2Winfried H. Schwarz, 1,2Mario Trieloff, 1Klemens Bollinger, 1Niklas Gantert, 1,3Vera A. Fernandes, 1Hans-Peter Meyer, 4Hal Povenmire,5Elmar K. Jessberger, 1,2Massimo Guglielmino, 6,7Christian Koeberl
1Institut für Geowissenschaften, Ruprecht-Karls-Universität Heidelberg, Im Neuenheimer Feld 234-236, 69120 Heidelberg, Germany
2Klaus-Tschira-Labor für Kosmochemie, Ruprecht-Karls-Universität Heidelberg, Im Neuenheimer Feld 234-236, 69120 Heidelberg, Germany
3Museum für Naturkunde – Berlin, Leibniz-Institut für Evolutions- und Biodiversitätsforschung, Invalidenstrasse 43, D-10115 Berlin, Germany
47560 Greenboro Drive, #4, West Melbourne, FL 32904
5Institut für Planetologie, Universität Münster, Wilhelm Klemm Straße 10, 48419 Münster,Germany
6Department of Lithospheric Research, University of Vienna, Althanstrasse 14, 1090 Vienna, Austria
7Natural History Museum, Burgring 7, 1010 Vienna, Austria

High resolution 40Ar-39Ar step heating dating of australites and indochinites, representing a large area of the Australasian strewn field, and more recently discovered tektite like glasses from Central America (Belize) and Western Canada, were analysed. Precise plateau ages were obtained in all cases, yielding indistinguishable ages of 789 ± 9 ka for four australites, 783 ± 5 ka for four indochinites, 783 ± 17 ka for one Western Canadian and 769 ± 16 ka for one Belize impact melt glass. Concerning major elements and REEs, australites and the Western Canadian impact melt glass are indistinguishable. If the Western Canadian sample was transported by impact ejection and belongs to the Australasian strewn field, this implies extremely far ballistic transport of 9000 km distance assuming a source crater in southern Asia. The distinct major element and REE composition of the Belize impact melt glass suggests formation in another separate impact event. We conclude that the Australasian/Western Canadian impact melt glasses formed 785 ± 7 ka ago and Belize impact melt glass 769 ± 16 ka ago. The two impact events forming these two strewn fields occurred remarkably closely related in time, i.e., separated by <30 ka.

Reference
Schwarz WH, Trieloff M, Bollinger K, Gantert N, Fernandes VA, Meyer H-P, Povenmire H, Jessberger EK, Guglielmino M, Koeberl (2016) Coeval ages of Australasian, Central American and Western Canadian tektites reveal multiple impacts 790 ka ago. Geochimica et Cosmochimica Acta (in Press)
Link to Article [doi:10.1016/j.gca.2015.12.037]
Copyright Elsevier

Raman spectroscopy: Caution when interpreting organic carbon from oxidising environments

1Connor Brolly, 1John Parnell, 1Stephen Bowden
1Department of Geology & Petroleum Geology, University of Aberdeen, Aberdeen, UK

We currently do not have a copyright agreement with this publisher and cannot display the abstract here

Reference
Brolly C, Parnell J, Bowden S (2016) Raman spectroscopy: Caution when interpreting organic carbon from oxidising Environments. Planetary and Space Science 121, 53–59
Link to Article [doi:10.1016/j.pss.2015.12.008]

Chemistry of Tertiary sediments in the surroundings of the Ries impact structure and moldavite formation revisited

1Karel Žák, 1Roman Skála, 2Zdeněk Řanda, 2Jiří Mizera, 3Kurt Heissig,, 1Lukáš Ackerman, 1Jana Ďurišová, 1Šárka Jonášová, 2Jan Kameník, 4Tomáš Magna
1Institute of Geology, The Czech Academy of Sciences, Rozvojová 269, CZ-165 00 Prague 6, Czech Republic
2Nuclear Physics Institute, The Czech Academy of Sciences, Hlavní 130, CZ-250 68 Husinec-Řež, Czech Republic
3Bayerische Staatssammlungen für Paläontologie und Geologie, Paläontolgisches Museum, Richard-Wagner-Straße 10, D-80333 München, Germany
4Czech Geological Survey, Klárov 3, CZ-118 21 Prague 1, Czech Republic

Moldavites, tektites of the Central European strewn field, have been traditionally linked with the Ries impact structure in Germany. They are supposed to be derived mainly from the near-surface sediments of the Upper Freshwater Molasse of Miocene age that probably covered the target area before the impact. Comparison of the chemical composition of moldavites with that of inferred source materials requires recalculation of the composition of sediments to their water-, organic carbon- and carbon dioxide-free residuum. This recalculation reflects the fact that these compounds were lost almost completely from the target materials during their transformation to moldavites. Strong depletions in concentrations of many elements in moldavites relative to the source sediments (e.g., Mo, Cu, Ag, Sb, As, Fe) are contrasted with enrichments of several elements in moldavites (e.g., Cs, Ba, K, Rb). These discrepancies can be generally solved using two different approaches, either by involvement of a component of specific chemical composition, or by considering elemental fractionation during tektite formation. The proposed conceptual model of moldavite formation combines both approaches and is based on several steps: (i) the parent mixture (Upper Freshwater Molasse sediments as the dominant source) contained also a minor admixture of organic matter and soils; (ii) the most energetic part of the ejected matter was converted to vapor (plasma) and another part produced melt directly upon decompression; (iii) following further adiabatic decompression, the expanding vapor phase disintegrated the melt into small melt droplets and some elements were partially lost from the melt because of their volatility, or because of the volatility of their compounds, such as carbonyls of Fe and other transition metals (e.g., Ni, Co, Mo, Cr, and Cu); (iv) large positively charged ions such as Cs+, Ba2+, K+, Rb+ from the plasma portion were enriched in the late-stage condensation spherules or condensed directly onto negatively charged melt droplets; (v) simultaneously, the melt droplets coalesced into larger tektite bodies. Steps (iii) to (v) may have overlapped in time. The still melted moldavite bodies reaching their final size were reshaped by further melt flow. This melt flow was related to moldavite rotation and escape (bubbling off) of the last portion of gaseous volatiles during their flight in a low-pressure region above the dense layer of the atmosphere.

Reference
Žák K, Skála R, Řanda Z, Mizera J, Heissig K, Ackerman L, Ďurišová J, Jonášová Š, Kameník J,  Magna T (2016) Chemistry of Tertiary sediments in the surroundings of the Ries impact structure and moldavite formation revisited. Geochmica et Cosmochimcia Acta (in Press)
Link to Article [doi:10.1016/j.gca.2016.01.025]
Copyright Elsevier

Genetic relationship between Na-rich chondrules and Ca,Al-rich inclusions? – Formation of Na-rich chondrules by melting of refractory and volatile precursors in the Solar Nebula

1Samuel Ebert, 1Addi Bischoff
1Institut für Planetologie, Westfälische Wilhelms-Universität Münster, Wilhelm-Klemm-Str. 10, 48149 Münster, Germany

Al-rich objects (Ca,Al-rich inclusions (CAIs), Al-rich chondrules, Al-rich fragments) occur in all chondrite classes. These objects can be centimeter-sized in CV3 carbonaceous chondrites, but they are generally much smaller in other chondrite groups and classes. Within the ordinary chondrites, most Al-rich objects are chondrules that vary from Ca- to Na-rich. Here, we have investigated the mineralogy and major element chemistry of 32 Na-rich chondrules and 3 Na-rich fragments from 15 different chondrites. Most objects (chondrules and chondrule fragments) are from ordinary chondrites (petrologic types 3.2-3.8), but two of the chondrules are from two CO3 chondrites, and three of the chondrules are from one Rumuruti (R)-chondrite. We found that these Na-rich objects have bulk Na2O-concentrations between 4.3 and 15.2 wt%. Texturally, they typically consist of euhedral to subhedral (often skeletal) mafic minerals (olivine and pyroxenes) embedded within a nepheline-normative, glassy mesostasis, which is brownish in transmitted light. In addition, some chondrules contain euhedral to subhedral spinel. Bulk chondrule compositions show group II, group III, and ultrarefractory rare earth element (REE) patterns similar to those found in CAIs. These results clearly demonstrate that the Na-rich chondrules must have been formed by melting of precursors containing an (ultra)-refractory element-rich component and Na-rich constituents. The Na-rich chondrules showed Sm and Eu anomalies, indicating that they must have formed at low oxygen fugacities. Based on the chemical composition of the Na-rich objects, we can rule out that they were formed as a result of planetary formation due to metasomatic processes or processes related to collisions between molten planetesimals.

Reference
Ebert S, Bischoff A (2016) Genetic relationship between Na-rich chondrules and Ca,Al-rich inclusions? – Formation of Na-rich chondrules by melting of refractory and volatile precursors in the Solar Nebula. Geochimica et Cosmochimica Acta (in Press)
Link to Article [doi:10.1016/j.gca.2016.01.014]
Copyright Elsevier

Mobility of Iron and Nickel at Low Temperatures: Implications for 60Fe-60Ni Systematics of Chondrules from Unequilibrated Ordinary Chondrites

1,2Myriam Telus, 2Gary R. Huss, 3Ryan C. Ogliore, 1,2Kazuhide Nagashima, 3Daryl L. Howard, 4Matthew G. Newville, 5Andrew G. Tomkins
1Geology & Geophysics, School of Ocean, Earth Science & Technology, University of Hawai‘i at Mānoa, Honolulu, HI 96822, USA
2Hawai‘i Institute of Geophysics and Planetology, School of Ocean, Earth Science & Technology, University of Hawai‘i at Mānoa, Honolulu, HI 96822, USA
3Australian Synchrotron, Clayton, Victoria 3168, Australia
4Center for Advanced Radiation Sources, University of Chicago, Chicago, IL 60637, USA
5School of Earth, Atmosphere & Environment, Monash University, Melbourne, Victoria 3800, Australia

The Fe and Ni isotopic composition of ferromagnesian silicates in chondrules from unequilibrated ordinary chondrites (UOCs) have been used to estimate the initial abundance of the short-lived radionuclide, 60Fe, in the early Solar System. However, these estimates vary widely, and there are systematic discrepancies in initial 60Fe/56Fe ratios inferred from in situ and bulk analyses of chondrules. A possible explanation is that the Fe-Ni isotope system in UOC chondrules has not remained closed (a necessary condition for isotopic dating), and Fe and Ni have been redistributed since the chondrules formed. In order to evaluate this, we collected high-spatial-resolution X-ray fluorescence (XRF) maps of UOC chondrules to better understand the distribution and mobility of Fe and Ni at the low metamorphic temperatures of these chondrites. We used synchrotron X-ray-fluorescence microscopy to map the distribution of Fe, Ni and other elements in portions of 71 chondrules from 8 UOCs (types 3.00-3.2). The synchrotron XRF maps show clear enrichment of Fe and/or Ni in fractures ranging down to micrometer scale in chondrules from all UOCs analyzed for this study regardless of petrologic type and regardless of whether fall or find, indicating that there was significant exchange of Fe and Ni between chondrules and matrix and that the Fe-Ni system was not closed. Sixty percent of chondrules in Semarkona (LL3.00) have Fe and Ni enrichment along fractures, while 80-100% of chondrules analyzed from the other UOCs show these enrichments. Mobilization was likely a result of fluid transport of Fe and Ni during aqueous alteration on the parent body and/or during terrestrial weathering. In situ and bulk Fe-Ni analyses that incorporate extraneous Fe and Ni from chondrule fractures will result in lowering the inferred initial 60Fe/56Fe ratios.

Reference
Telus M, Huss GR, Ogliore RC, Nagashima K, Howard DL, Newville MG, Tomkins AG (2016) Mobility of Iron and Nickel at Low Temperatures: Implications for 60Fe-60Ni Systematics of Chondrules from Unequilibrated Ordinary Chondrites. Geochimica et Cosmochimica Acta (in Press)
Link to Article [doi:10.1016/j.gca.2015.11.046]
Copyright Elsevier

Most popular papers (January)

The most popular papers on Cosmochemistry Papers in January were:

1-Chan QHS, Chikaraishi Y, Takano Y, Ogawa NO, Ohkouchi N (2016) Amino acid compositions in heated carbonaceous chondrites and their compound-specific nitrogen isotopic ratios. Earth, Planets and Space 68, 7
Link to Article [doi:10.1186/s40623-016-0382-8]

2-Steenstra ES, Knibbe JS, Rai N, van Westrenen W (2016) Constraints on core formation in Vesta from metal–silicate partitioning of siderophile elements. Geochimica et Cosmochimica Acta (in Press)
Link to Article [doi:10.1016/j.gca.2016.01.002]

3-Heck PR, Schmitz B, Rout SS, Tenner T, Villalon K, Cronholm A, Terfelt F,Kitae NT (2016) A search for H-chondritic chromite grains in sediments that formed immediately after the breakup of the L-chondrite parent body 470 Ma ago. Geochimica et Cosmochimica Acta (in Press)
Link to Article [doi:10.1016/j.gca.2015.11.042]

4-Friedrich JM,Glavin DP,Rivers ML, Dworkin JP (2016) Effect of a synchrotron X-ray microtomography imaging experiment on the amino acid content of a CM chondrite. Meteoritics & Planetary Sciences (in Press)
Link to Article [DOI: 10.1111/maps.12595]

5-Haggerty SE (2016) Spinel in planetary systems. American Mineralogist 101,5-6
Link to Article[doi:10.2138/am-2016-5554]