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地月系统与顽辉石球粒陨石之间的 Nd 同位素变异。

Nd isotope variation between the Earth-Moon system and enstatite chondrites.

机构信息

Department of Earth and Atmospheric Sciences, University of Houston, Houston, TX, USA.

Department of Geology and Environmental Earth Science, Miami University, Oxford, OH, USA.

出版信息

Nature. 2022 Nov;611(7936):501-506. doi: 10.1038/s41586-022-05265-0. Epub 2022 Oct 6.

Abstract

Reconstructing the building blocks that made Earth and the Moon is critical to constrain their formation and compositional evolution to the present. Neodymium (Nd) isotopes identify these building blocks by fingerprinting nucleosynthetic components. In addition, the Sm-Nd and Sm-Nd decay systems, with half-lives of 103 million years and 108 billion years, respectively, track potential differences in their samarium (Sm)/Nd ratios. The difference in Earth's present-day Nd/Nd ratio compared with chondrites, and in particular enstatite chondrites, is interpreted as nucleosynthetic isotope variation in the protoplanetary disk. This necessitates that chondrite parent bodies have the same Sm/Nd ratio as Earth's precursor materials. Here we show that Earth and the Moon instead had a Sm/Nd ratio approximately 2.4 ± 0.5 per cent higher than the average for chondrites and that the initial Nd/Nd ratio of Earth's precursor materials is more similar to that of enstatite chondrites than previously proposed. The difference in the Sm/Nd ratio between Earth and chondrites probably reflects the mineralogical distribution owing to mixing processes within the inner protoplanetary disk. This observation simplifies lunar differentiation to a single stage from formation to solidification of a lunar magma ocean. This also indicates that no Sm/Nd fractionation occurred between the materials that made Earth and the Moon in the Moon-forming giant impact.

摘要

重建构成地球和月球的基本物质对于约束它们的形成和组成演化至关重要。钕(Nd)同位素通过指纹识别核合成成分来确定这些基本物质。此外,Sm-Nd 和 Sm-Nd 衰变系统的半衰期分别为 1.03 亿年和 1080 亿年,分别追踪它们的钐(Sm)/Nd 比值的潜在差异。与球粒陨石,特别是顽辉石球粒陨石相比,地球目前的 Nd/Nd 比值的差异被解释为原行星盘中核合成同位素的变化。这意味着球粒陨石母体与地球前体材料具有相同的 Sm/Nd 比值。在这里,我们表明,地球和月球的 Sm/Nd 比值比球粒陨石的平均值高约 2.4±0.5%,地球前体材料的初始 Nd/Nd 比值与顽辉石球粒陨石更相似,而不是以前提出的那样。地球和球粒陨石之间 Sm/Nd 比值的差异可能反映了由于内原行星盘中的混合过程导致的矿物分布。这一观察结果将月球的分化简化为从月球岩浆海洋的形成到凝固的单一阶段。这也表明,在月球形成的巨撞击中,构成地球和月球的物质之间没有发生 Sm/Nd 分馏。

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