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结合难熔包体及其矿物分离物中质量依赖和核合成同位素变化来确定其原始铁同位素组成。

Combined mass-dependent and nucleosynthetic isotope variations in refractory inclusions and their mineral separates to determine their original Fe isotope compositions.

作者信息

Shollenberger Quinn R, Wittke Andreas, Render Jan, Mane Prajkta, Schuth Stephan, Weyer Stefan, Gussone Nikolaus, Wadhwa Meenakshi, Brennecka Gregory A

机构信息

Institut für Planetologie, University of Münster, Wilhelm-Klemm-Straße 10, 48149 Münster, Germany.

Institut für Mineralogie, University of Münster, Corrensstraße 24, 48149 Münster, Germany.

出版信息

Geochim Cosmochim Acta. 2019 Oct 15;263:215-234. doi: 10.1016/j.gca.2019.07.021. Epub 2019 Jul 17.

Abstract

Calcium-aluminum-rich inclusions (CAIs) are the oldest dated materials that provide crucial information about the isotopic reservoirs present in the early Solar System. For a variety of elements, CAIs have isotope compositions that are uniform yet distinct from later formed solid material. However, despite being the most abundant metal in the Solar System, the isotopic composition of Fe in CAIs is not well constrained. In an attempt to determine the Fe isotopic compositions of CAIs, we combine extensive work from a previously studied CAI sample set with new isotopic work characterizing mass-dependent and mass-independent (nucleosynthetic) signatures in Mg, Ca, and Fe. This investigation includes work on three mineral separates of the Allende CAI Egg 2. For all isotope systems investigated, we find that in general, fine-grained CAIs exhibit light mass-dependent isotopic signatures relative to terrestrial standards, whereas igneous CAIs have heavier isotopic compositions relative to the fine-grained CAIs. Importantly, the mass-dependent Fe isotope signatures of bulk CAIs show a range of both light (fine-grained CAIs) and heavy (igneous CAIs) isotopic signatures relative to bulk chondrites, suggesting that Fe isotope signatures in CAIs largely derive from mass fractionation events such as condensation and evaporation occurring in the nebula. Such signatures show that a significant portion of the secondary alteration experienced by CAIs, particularly prevalent in fine-grained inclusions, occurred in the nebula prior to accretion into their respective parent bodies. Regarding nucleosynthetic Fe isotope signatures, we do not observe any variation outside of analytical uncertainty in bulk CAIs compared to terrestrial standards. In contrast, all three Egg 2 mineral separates display resolved mass-independent excesses in Fe compared to terrestrial standards. Furthermore, we find that the combined mass-dependent and nucleosynthetic Fe isotopic compositions of the Egg 2 mineral separates are well correlated, likely indicating that Fe indigenous to the CAI is mixed with less anomalous Fe, presumably from the solar nebula. Thus, these reported nucleosynthetic anomalies may point in the direction of the original Fe isotope composition of the CAI-forming region, but they likely only provide a minimum isotopic difference between the original mass-independent Fe isotopic composition of CAIs and that of later formed solids.

摘要

富钙铝包体(CAIs)是已知最古老的物质,它们提供了有关早期太阳系中同位素储库的关键信息。对于多种元素而言,CAIs具有统一的同位素组成,但与后来形成的固体物质不同。然而,尽管铁是太阳系中最丰富的金属,但CAIs中铁的同位素组成却没有得到很好的限制。为了确定CAIs的铁同位素组成,我们将先前研究的CAI样本集中的大量工作与新的同位素工作相结合,后者用于表征镁、钙和铁中与质量相关和与质量无关(核合成)的特征。这项研究包括对阿伦德CAI Egg 2的三种矿物分离物的研究。对于所有研究的同位素体系,我们发现,总体而言,相对于地球标准,细粒CAIs呈现出较轻的与质量相关的同位素特征,而火成CAIs相对于细粒CAIs具有较重的同位素组成。重要的是,相对于球粒陨石,块状CAIs的与质量相关的铁同位素特征显示出一系列较轻(细粒CAIs)和较重(火成CAIs)的同位素特征,这表明CAIs中的铁同位素特征很大程度上源自星云发生的诸如凝聚和蒸发等质量分馏事件。这些特征表明,CAIs经历的大量次生蚀变,特别是在细粒包体中普遍存在的次生蚀变,发生在吸积到各自母体之前的星云中。关于核合成铁同位素特征,与地球标准相比,我们在块状CAIs中未观察到分析不确定性之外的任何变化。相比之下,与地球标准相比,所有三种Egg 2矿物分离物在铁中都显示出明显的与质量无关的过剩。此外,我们发现Egg 2矿物分离物的与质量相关和核合成的铁同位素组成很好地相关,这可能表明CAI原生的铁与可能来自太阳星云的异常较小的铁混合在一起。因此,这些报道的核合成异常可能指向CAI形成区域的原始铁同位素组成方向,但它们可能仅提供了CAIs原始与质量无关的铁同位素组成与后来形成的固体之间的最小同位素差异。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bbda/7751496/cd5279e6a132/nihms-1628730-f0001.jpg

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