土(古典元素)
环境化学
地质学
环境科学
化学
物理
数学物理
作者
Marine Paquet,Frédéric Moynier,Tetsuya Yokoyama,Wei Dai,Yan Hu,Yoshinari Abe,J. Aléon,C. M. O'd. Alexander,S. Amari,Yuri Amelin,Ken‐ichi Bajo,Martin Bizzarro,Audrey Bouvier,Richard W. Carlson,Marc Chaussidon,Byeon‐Gak Choi,Nicolas Dauphas,A. M. Davis,Tommaso Di Rocco,Wataru Fujiya
出处
期刊:Nature Astronomy
[Nature Portfolio]
日期:2022-12-12
卷期号:7 (2): 182-189
被引量:49
标识
DOI:10.1038/s41550-022-01846-1
摘要
Initial analyses showed that asteroid Ryugu's composition is close to CI (Ivuna-like) carbonaceous chondrites -the chemically most primitive meteorites, characterized by near-solar abundances for most elements. However, some isotopic signatures (e.g., Ti, Cr) overlap with other carbonaceous chondrite (CC) groups, so the details of the link between Ryugu and the CI chondrites are not fully clear yet. Here we show that Ryugu and CI chondrites have the same zinc and copper isotopic composition. As the various chondrite groups have very distinct Zn and Cu isotopic signatures, our results point at a common genetic heritage between Ryugu and CI chondrites, ruling out any affinity with other CC groups. Since Ryugu's pristine samples match the solar elemental composition for many elements, their Zn and Cu isotopic compositions likely represent the best estimates of the solar composition. Earth's mass-independent Zn isotopic composition is intermediate between Ryugu/CC and non-carbonaceous chondrites, suggesting a contribution of Ryugu-like material to Earth's budgets of Zn and other moderately volatile elements.
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