Constraints on the noble gas composition of the deep mantle by bubble-by-bubble analysis of a volcanic glass sample from Iceland

1Colin, A., 1Moreira, M., 2Gautheron, C., 3Burnard, P.
1Institut de Physique du Globe de Paris, Université Paris Diderot, Paris, France
2Faculté des Sciences d’Orsay, Université Paris Sud, Orsay, France
3CRPG-CNRS, Université de Lorraine, Vandœuvre-lès-Nancy, France

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Reference
Colin A, Moreira M, Gautheron C, Burnard P (2015) Constraints on the noble gas composition of the deep mantle by bubble-by-bubble analysis of a volcanic glass sample from Iceland. Chemical Geology 417, 173-183.
Link to Article [DOI: 10.1016/j.chemgeo.2015.09.020]

Petrography and geochemistry of the enriched basaltic shergottite Northwest Africa 2975

1Qi He, 1Long Xiao, 2J. Brian Balta, 3Ioannis P. Baziotis, 4Weibiao Hsu, 5Yunbin Guan
1Planetary Science Institute, School of Earth Sciences, China University of Geosciences, Wuhan, China
2Department of Geology and Planetary Sciences, University of Pittsburgh, Pittsburgh, Pennsylvania, USA
3Agricultural University of Athens, Laboratory of Mineralogy and Geology, Athens, Greece
4Laboratory for Astrochemistry and Planetary Sciences, Purple Mountain Observatory, Chinese Academy of Sciences, Nanjing, China
5Division of Geological and Planetary Sciences, California Institute of Technology, Pasadena, California, USA

We present a study of the petrology and geochemistry of basaltic shergottite Northwest Africa 2975 (NWA 2975). NWA 2975 is a medium-grained basalt with subophitic to granular texture. Electron microprobe (EMP) analyses show two distinct pyroxene compositional trends and patchy compositional zoning patterns distinct from those observed in other meteorites such as Shergotty or QUE 94201. As no bulk sample was available to us for whole rock measurements, we characterized the fusion crust and its variability by secondary ion mass spectrometer (SIMS) measurements and laser ablation inductively coupled plasma spectroscopy (LA-ICP-MS) analyses as a best-available proxy for the bulk rock composition. The fusion crust major element composition is comparable to the bulk composition of other enriched basaltic shergottites, placing NWA 2975 within that sample group. The CI-normalized REE (rare earth element) patterns are flat and also parallel to those of other enriched basaltic shergottites. Merrillite is the major REE carrier and has a flat REE pattern with slight depletion of Eu, parallel to REE patterns of merrillites from other basaltic shergottites. The oxidation state of NWA 2975 calculated from Fe-Ti oxide pairs is NNO-1.86, close to the QFM buffer. NWA 2975 represents a sample from the oxidized and enriched shergottite group, and our measurements and constraints on its origin are consistent with the hypothesis of two distinct Martian mantle reservoirs: a reduced, LREE-depleted reservoir and an oxidized, LREE-enriched reservoir. Stishovite, possibly seifertite, and dense SiO2 glass were also identified in the meteorite, allowing us to infer that NWA 2975 experienced a realistic shock pressure of ~30 GPa.

Reference
He Q, Xiao L, Balta JB, Baziotis IP, Hsu W, Guan Y (2015) Petrography and geochemistry of the enriched basaltic shergottite Northwest Africa 2975. Meteoritics & Planetary Science (in Press)
Link to Article [DOI: 10.1111/maps.12571]
Published by arrangement with John Wiley & Sons

40Ar/39Ar age of material returned from asteroid 25143 Itokawa

1,2Jisun Park et al. (>10)*
1Department of Chemistry and Chemical Biology, Rutgers University, Piscataway, New Jersey, USA
2Lunar and Planetary Institute, Houston, Texas, USA
*Find the extensive, full author and affiliation list on the publishers Website

The Hayabusa mission to asteroid 25143, Itokawa, brought back 2000 small particles, which most closely resemble material found in LL4-6 chondrites. We report an 40Ar/39Ar age of 1.3 ± 0.3 Ga for a sample of Itokawa consisting of three grains with a total mass of ~2 μg. This age is lower than the >4.0 Ga ages measured for 75% of LL chondrites but close to one for Y-790964 and its pairs. The flat 40Ar/39Ar release spectrum of the sample suggests complete degassing 1.3 Ga ago. Recent solar heating in Itokawa’s current orbit does not appear likely to have reset that age. Solar or impact heating 1.3 Ga ago could have done so. If impact heating was responsible, then the 1.3 Ga age sets an upper bound on the time at which the Itokawa rubble pile was assembled and suggests that rubble pile creation was an ongoing process in the inner solar system for at least the first 3 billion years of solar system history.

Reference
Park J et al. (2015) 40Ar/39Ar age of material returned from asteroid 25143 Itokawa. Meteoritics & Planetary Science (in Press)
Link to Article [DOI: 10.1111/maps.12564]
Published by arrangement with John Wiley & Sons

Magnetic signatures of the orogenic crust of the Patagonian Andes with implication for planetary exploration

1Díaz Michelena, M., 2Kilian, R.
1Payloads and Space Sciences Department, INTA, Ctra. Torrejón – Ajalvir km 4, Torrejón de Ardoz, Spain
2Geology Department, University of Trier, Behringstrasse, Trier, Germany

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Reference
Díaz Michelena M, Kilian R (2015) Magnetic signatures of the orogenic crust of the Patagonian Andes with implication for planetary Exploration. Physics of the Earth and Planetary Interiors 248, 35-54
Link to Article [DOI: 10.1016/j.pepi.2015.08.005]

The Kunashak meteorite: New data on mineralogy

1Erokhin, Y.V., 1Koroteev, V.A., 1Khiller, V.V., 2Burlakov, E.V., 1Ivanov, K.S., 2Kleimenov, D.A.
1Zavaritskii Institute of Geology and Geochemistry, Ural Branch, Russian Academy of Sciences, Yekaterinburg, Russian Federation
2Ural State Mining University, Yekaterinburg, Russian Federation

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Reference
Erokhin YV, Koroteev VA, Khiller VV, Burlakov EV, Ivanov KS, Kleimenov DA (2015) The Kunashak meteorite: New data on mineralogy. Doklady Earth Sciences 464, 1058-1061
Link to Article [DOI: 10.1134/S1028334X15100128]

Investigations on alunogen under Mars-relevant temperature conditions: An example for a single-crystal-to-single-crystal phase transition

1Volker Kahlenberg, 2Doris E. Braun, 1Maria Orlova
1Institute of Mineralogy and Petrography, University of Innsbruck, Innrain 52, A-6020 Innsbruck, Austria
2Institute of Pharmacy, Pharmaceutical Technology, Innrain 52c, A-6020 Innsbruck, Austria

The low-temperature (LT) dependent behavior of a synthetic alunogen sample with composition Al2(SO4)3·16.61H2O has been studied in the overall temperature range from −100 to 23 °C by DSC measurements, in situ powder and single-crystal X-ray diffraction as well as Raman spectroscopy. Cooling/heating experiments using the different techniques prove that alunogen undergoes a reversible, sluggish phase transition somewhere between −30 and −50 °C from the triclinic room-temperature (RT) form to a previously unknown LT-polymorph. A significant hysteresis for the transition was observed with all three methods and the transition temperatures were found to depend on the employed cooling/heating rates. The crystal structure of the LT-modification has been studied at −100 °C using single crystals, which have been grown from an aqueous solution. Basic crystallographic data are as follows: monoclinic symmetry, space group type P21, a = 7.4125(3), b = 26.8337(16), c = 6.0775(3) Å, β = 97.312(4)°, V = 1199.01(10) Å3, and Z = 2. Structure analysis revealed that LT-alunogen corresponds to a non-stoichiometric hydrate with 16.61 water moieties pfu. Notably, the first-order transition results in a single-crystal-to-single-crystal transformation. In the asymmetric unit there are 2 Al-atoms, 3 [SO4]-tetrahedra, and 17 crystallographically independent sites for water molecules, whose hydrogen positions could be all located by difference-Fourier calculations. According to site-population refinements only one water position (Ow5) shows a partial occupancy. A comfortable way to rationalize the crystal structure of the LT-modification of alunogen is based on a subdivision of the whole structure into two different slabs parallel to (010). The first type of slab (type A) is about 9 Å thick and located at y ≈ 0 and y ≈ ½, respectively. It contains the Al(H2O)6-octahedra as well as the sulfate groups centered by S1 and S2. Type B at y ≈ ¼ and y ≈ ¾ comprises the remaining tetrahedra about S3 and a total of five additional “zeolitic” water sites (Ow1–Ow5), which are not a part of a coordination polyhedron. Within slab-type A alternating chains of (unconnected) octahedra and tetrahedra can be identified, which are running parallel to [100]. In addition to electrostatic interactions between the Al(H2O)63+- and the (SO4)2−-units, hydrogen bonds are also essential for the stability of these slabs. A detailed comparison between both modifications including a derivation from a hypothetical aristotype based on group-theoretical concepts is presented. Since alunogen has been postulated to occur in martian soils the new findings may help in the identification of the LT-form by X-ray diffraction using the Curiosity Rover’s ChemMin instrument or by Raman spectroscopy.

Reference
Kahlenberg V, Braun DE, Orlova M (2015) Investigations on alunogen under Mars-relevant temperature conditions: An example for a single-crystal-to-single-crystal phase Transition. American Mineralogist 100, 2548-2558
Link to Article [doi: 10.2138/am-2015-5342]

Copyright: The Mineralogical Society of America

Autonomous soil analysis by the Mars Micro-beam Raman Spectrometer (MMRS) on-board a rover in the Atacama Desert: A terrestrial test for planetary exploration

1Wei, J., 1Wang, A., 2Lambert, J.L., 3Wettergreen, D., 4Cabrol, N., 4Warren-Rhodes, K., 5Zacny, K.
1Department of Earth and Planetary Sciences, McDonnell Center for the Space Sciences, Washington University in St. Louis, 1 Brookings Drive, St. Louis, MO, United States
2Jet Propulsion Laboratory, 4800 Oak Grove Drive, CA, United States
3Robotics Institute, Carnegie Mellon University USA, 5000 Forbes Avenue, Pittsburgh, PA, United States
4SETI Institute, Carl Sagan Center, NASA Ames Research Center, Moffett Field, CA, United States
5HoneyBee Robotics and Spacecraft Mechanisms Corporation, 398 West Washington Blvd, Suite 200, Pasadena, CA, United States

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Reference
Wei J, Wang A, Lambert JL, Wettergreen D, Cabrol N, Warren-Rhodes K, Zacny K (2015) Autonomous soil analysis by the Mars Micro-beam Raman Spectrometer (MMRS) on-board a rover in the Atacama Desert: A terrestrial test for planetary Exploration. Journal of Raman Spectroscopy 46, 810-821
Link to Article [DOI: 10.1002/jrs.4656]

Microstructural evidence for a disequilibrium condensation origin for hibonite-spinel inclusions in the ALHA77307 CO3.0 chondrite

1,2,3Jangmi Han, 1Adrian J. Brearley,3Lindsay P. Keller
1Department of Earth and Planetary Sciences, University of New Mexico, Albuquerque, New Mexico, USA
2USRA Lunar and Planetary Institute, Houston, Texas, USA
3NASA Johnson Space Center, Houston, Texas, USA

Two hibonite-spinel inclusions (CAIs 03 and 08) in the ALHA77307 CO3.0 chondrite have been characterized in detail using the focused ion beam sample preparation technique combined with transmission electron microscopy. These hibonite-spinel inclusions are irregularly shaped and porous objects and consist of randomly oriented hibonite laths enclosed by aggregates of spinel with fine-grained perovskite inclusions finally surrounded by a partial rim of diopside. Melilite is an extremely rare phase in this type of CAI and occurs only in one inclusion (CAI 03) as interstitial grains between hibonite laths and on the exterior of the inclusion. The overall petrologic and mineralogical observations suggest that the hibonite-spinel inclusions represent high-temperature condensates from a cooling nebular gas. The textural relationships indicate that hibonite is the first phase to condense, followed by perovskite, spinel, and diopside. Texturally, melilite condensation appears to have occurred after spinel, suggesting that the condensation conditions were far from equilibrium. The crystallographic orientation relationships between hibonite and spinel provide evidence of epitaxial nucleation and growth of spinel on hibonite surfaces, which may have lowered the activation energy for spinel nucleation compared with that of melilite and consequently inhibited melilite condensation. Hibonite contains abundant stacking defects along the (001) plane consisting of different ratios of the spinel and Ca-containing blocks within the ideal hexagonal hibonite structure. This modification of the stacking sequence is likely the result of accommodation of excess Al in the gas into hibonite due to incomplete condensation of corundum from a cooling gas under disequilibrium conditions. We therefore conclude that these two hibonite-spinel inclusions in ALHA77307 formed by high-temperature condensation under disequilibrium conditions.

Reference
Han J, Brearley AJ, Keller LP (2015) Microstructural evidence for a disequilibrium condensation origin for hibonite-spinel inclusions in the ALHA77307 CO3.0 chondrite. Meteoritics & Planetary Science (in Press)
Link to Article [DOI: 10.1111/maps.12563]

Published by arrangement with John Wiley & Sons

Uranium isotopic composition and absolute ages of Allende chondrules

1Brennecka, G. A., 1Budde, G.,1Kleine, T.
1Institut für Planetologie, Westfälische Wilhelms-Universität Münster, Münster, Germany

A handful of events, such as the condensation of refractory inclusions and the formation of chondrules, represent important stages in the formation and evolution of the early solar system and thus are critical to understanding its development. Compared to the refractory inclusions, chondrules appear to have a protracted period of formation that spans millions of years. As such, understanding chondrule formation requires a catalog of reliable ages, free from as many assumptions as possible. The Pb-Pb chronometer has this potential; however, because common individual chondrules have extremely low uranium contents, obtaining U-corrected Pb-Pb ages of individual chondrules is unrealistic in the vast majority of cases at this time. Thus, in order to obtain the most accurate 238U/235U ratio possible for chondrules, we separated and pooled thousands of individual chondrules from the Allende meteorite. In this work, we demonstrate that no discernible differences exist in the 238U/235U compositions between chondrule groups when separated by size and magnetic susceptibility, suggesting that no systematic U-isotope variation exists between groups of chondrules. Consequently, chondrules are likely to have a common 238U/235U ratio for any given meteorite. A weighted average of the six groups of chondrule separates from Allende results in a 238U/235U ratio of 137.786 ± 0.004 (±0.016 including propagated uncertainty on the U standard [Richter et al. 2010]). Although it is still possible that individual chondrules have significant U isotope variation within a given meteorite, this value represents our best estimate of the 238U/235U ratio for Allende chondrules and should be used for absolute dating of these objects, unless such chondrules can be measured individually.

Reference
Brennecka GA, Budde G, Kleine T (2015) Uranium isotopic composition and absolute ages of Allende chondrules. Meteoritics & Planetary Science (in Press)
Link to Article [DOI: 10.1111/maps.12567]
Published by arrangement with John Wiley & Sons

Characterization of (357439) 2004 BL86 on its close approach to Earth in 2015

1Birlan, M et al. (>10)*
1Institut de Mécanique Céleste et de Calcul des Éphémérides (IMCCE), Observatoire de Paris, CNRS UMR8028, 77 avenue Denfert-Rochereau, 75014 Paris Cedex, France
*Find the extensive, full author and affiliation list on the publishers website

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Reference
Birlan M et al. (2015) Characterization of (357439) 2004 BL86 on its close approach to Earth in 2015. Astronomy & Astrophysics 581, A3
Link to Article [http://dx.doi.org/10.1051/0004-6361/201526460]