月球及其他地区锆石颗粒的 176Lu-176Hf 分析方法

IF 2.9 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Xi Chen, Nicolas Dauphas*, Zhe J. Zhang, Blair Schoene, Melanie Barboni, Ingo Leya, Junjun Zhang, Dawid Szymanowski and Kevin D. McKeegan, 
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引用次数: 0

摘要

锆石存在于来自月球、火星和一些分化陨石母体的地外岩石中。这些锆石非常稀少,通常体积很小,并受到宇宙射线照射引起的中子俘获的影响。将176Lu-176Hf衰变系统应用于月球等行星体的锆石,有助于确定大规模分异过程(如月球岩浆海洋的结晶)的年代学。在此,我们介绍了利用 ID-TIMS U-Pb 测量经过化学磨损后的地外锆石的 Hf 同位素组成的方法。我们介绍了一种两阶段洗脱方案,以从 Zr 中分离出 Hf,同时保留未使用的 Zr 部分,以便将来进行同位素分析。我们还利用最新的热中子俘获截面和表热共振积分重新研究了中子俘获的影响。我们的测试表明,Hf 同位素分析的精度接近理论上可以达到的水平。我们对阿波罗任务返回的月球岩石(14163 号月球土壤、72275 号碎屑多岩屑角砾岩和 14321 号碎屑丰富角砾岩)中的少量锆石颗粒进行了测试。模型年龄与之前报告的数值一致,但由于只分析了少量小锆石(3 个样本中的 5 个锆石),因此还需要进一步的工作来评估月球岩浆海洋结晶的年代学,并且可以通过测量更多和更大的月球锆石颗粒来提高分析的精确度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Methodologies for 176Lu–176Hf Analysis of Zircon Grains from the Moon and Beyond

Methodologies for 176Lu–176Hf Analysis of Zircon Grains from the Moon and Beyond

Methodologies for 176Lu–176Hf Analysis of Zircon Grains from the Moon and Beyond

Zircons are found in extraterrestrial rocks from the Moon, Mars, and some differentiated meteorite parent-bodies. These zircons are rare, often of small size, and have been affected by neutron capture induced by cosmic ray exposure. The application of the 176Lu–176Hf decay system to zircons from planetary bodies such as the Moon can help establish the chronology of large-scale differentiation processes such as the crystallization of the lunar magma ocean. Here, we present methods to measure the isotopic composition of Hf of extraterrestrial zircons dated using ID-TIMS U–Pb after chemical abrasion. We introduce a 2-stage elution scheme to separate Hf from Zr while preserving the unused Zr fraction for future isotopic analysis. The effect of neutron capture is also re-examined using the latest thermal neutron capture cross sections and epithermal resonance integrals. Our tests show that the precision of Hf isotopic analyses is close to what is theoretically attainable. We have tested this method to a limited set of zircon grains from lunar rocks returned by the Apollo missions (lunar soil 14163, fragmental polymict breccia 72275, and clast-rich breccia 14321). The model ages align with previously reported values, but further work is needed to assess the chronology of lunar magma ocean crystallization as only a handful of small zircons (5 zircons from 3 samples) were analyzed, and the precision of the analyses can be improved by measuring more and larger lunar zircon grains.

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来源期刊
ACS Earth and Space Chemistry
ACS Earth and Space Chemistry Earth and Planetary Sciences-Geochemistry and Petrology
CiteScore
5.30
自引率
11.80%
发文量
249
期刊介绍: The scope of ACS Earth and Space Chemistry includes the application of analytical, experimental and theoretical chemistry to investigate research questions relevant to the Earth and Space. The journal encompasses the highly interdisciplinary nature of research in this area, while emphasizing chemistry and chemical research tools as the unifying theme. The journal publishes broadly in the domains of high- and low-temperature geochemistry, atmospheric chemistry, marine chemistry, planetary chemistry, astrochemistry, and analytical geochemistry. ACS Earth and Space Chemistry publishes Articles, Letters, Reviews, and Features to provide flexible formats to readily communicate all aspects of research in these fields.
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