Oued Chebeika 002: A new CI1 meteorite linked to outer solar system bodies

IF 2.4 4区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS
J. Gattacceca, M. Gounelle, B. Devouard, J.-A. Barrat, L. Bonal, A. J. King, C. Maurel, P. Beck, M. Roskosz, J.-C. Viennet, D. Mukherjee, N. Dauphas, P. R. Heck, T. Yokoyama, K. López García, O. Poch, O. Grauby, C. S. Harrison, V. Vinogradoff, P. Vernazza, S. Tikoo, V. Vidal, P. Rochette, D. AuYang, D. Borschneck, J. Juraszek, B. Clark
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Abstract

CI1 chondrites are rare meteorites with high scientific value. In fact, they are the most chemically primitive meteorites and show evidence of intense parent-body aqueous alteration. They also share strong similarities with samples from Ryugu and Bennu asteroids returned by the JAXA Hayabusa2 and NASA's OSIRIS-REx missions. In this work, we present a detailed study of the Oued Chebeika 002 meteorite, a ~420 g CI1 chondrite found in Morocco in 2024. We describe its petrography, texture, and mineralogy, with a focus on clay mineralogy. We provide the bulk and mineral chemical composition, as well as the bulk oxygen, iron, and chromium isotopic compositions. Spectroscopic properties were studied by means of infrared and Raman spectroscopies. We also measured the density, grain density and magnetic properties. Our results confirm that Oued Chebeika 002 is a CI1 chondrite, with close similarities to the other five know CI1 chondrites, and samples from Ryugu and Bennu asteroids. Several lines of evidence indicate that Oued Chebeika 002 has suffered no significant terrestrial alteration. It is more pristine in that regard than Alais, Orgueil and Ivuna CI1 chondrites, and more similar to samples from asteroids Ryugu and Bennu. Subtle differences exist between Oued Chebeika 002 and other CI1 chondrites that cannot be accounted for by terrestrial alteration of the latter. For instance, olivine and calcite were not observed. It is also noteworthy that the magnetic mineral assemblage of Oued Chebeika 002 is significantly different from that of Alais, Ivuna and Orgueil, but undiscernible from that of Ryugu samples. Chromium and iron isotopic composition of Oued Chebeika 002 confirms that CI1 chondrites, like Ryugu samples, are distinct from meteorites belonging to the non-carbonaceous and carbonaceous isotopic groups and may have originated from the same region where ice giant planets and Oort Cloud comets were formed.

Abstract Image

Oued Chebeika 002:一颗与太阳系外天体有关的新CI1陨石
CI1球粒陨石是具有较高科学价值的稀有陨石。事实上,它们是化学上最原始的陨石,并显示出强烈的母体水蚀变的证据。它们也与JAXA隼鸟2号和NASA的OSIRIS-REx任务带回的龙宫和本努小行星的样本有很大的相似之处。在这项工作中,我们对2024年在摩洛哥发现的约420 g CI1球粒陨石Oued Chebeika 002进行了详细研究。我们描述了它的岩石学,质地和矿物学,重点是粘土矿物学。我们提供散装和矿物化学成分,以及散装氧,铁和铬的同位素组成。利用红外光谱和拉曼光谱对其光谱特性进行了研究。我们还测量了密度、晶粒密度和磁性能。我们的结果证实,Oued Chebeika 002是一颗CI1球粒陨石,与其他五颗已知的CI1球粒陨石以及来自龙宫和本努小行星的样本非常相似。几条线索的证据表明,Oued Chebeika 002没有受到明显的陆地变化。在这方面,它比Alais, Orgueil和Ivuna CI1球粒陨石更原始,更类似于小行星Ryugu和Bennu的样本。Oued Chebeika 002和其他CI1球粒陨石之间存在着微妙的差异,这些差异不能用后者的陆地变化来解释。例如,没有观察到橄榄石和方解石。值得注意的是,Oued Chebeika 002的磁性矿物组合与Alais、Ivuna和Orgueil的磁性矿物组合有显著差异,而与Ryugu样品的磁性矿物组合无明显差异。Oued Chebeika 002的铬和铁同位素组成证实了CI1球粒陨石,像Ryugu样品一样,不同于属于非碳质和碳质同位素群的陨石,可能起源于冰巨行星和奥尔特云彗星形成的同一地区。
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来源期刊
Meteoritics & Planetary Science
Meteoritics & Planetary Science 地学天文-地球化学与地球物理
CiteScore
3.90
自引率
31.80%
发文量
121
审稿时长
3 months
期刊介绍: First issued in 1953, the journal publishes research articles describing the latest results of new studies, invited reviews of major topics in planetary science, editorials on issues of current interest in the field, and book reviews. The publications are original, not considered for publication elsewhere, and undergo peer-review. The topics include the origin and history of the solar system, planets and natural satellites, interplanetary dust and interstellar medium, lunar samples, meteors, and meteorites, asteroids, comets, craters, and tektites. Our authors and editors are professional scientists representing numerous disciplines, including astronomy, astrophysics, physics, geophysics, chemistry, isotope geochemistry, mineralogy, earth science, geology, and biology. MAPS has subscribers in over 40 countries. Fifty percent of MAPS'' readers are based outside the USA. The journal is available in hard copy and online.
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