Department of Earth and Planetary Sciences, University of California, Davis, Davis, CA, USA.
Marine Chemistry and Geochemistry, Woods Hole Oceanographic Institution, Woods Hole, MA, USA.
Nature. 2021 Dec;600(7889):462-467. doi: 10.1038/s41586-021-04092-z. Epub 2021 Dec 15.
Establishing when, and from where, carbon, nitrogen and water were delivered to Earth is a fundamental objective in understanding the origin of habitable planets such as Earth. Yet, volatile delivery to Earth remains controversial. Krypton isotopes provide insights on volatile delivery owing to their substantial isotopic variations among sources, although pervasive atmospheric contamination has hampered analytical efforts. Here we present the full suite of krypton isotopes from the deep mantle of the Galápagos and Iceland plumes, which have the most primitive helium, neon and tungsten isotopic compositions. Except for Kr, the krypton isotopic compositions are similar to a mixture of chondritic and atmospheric krypton. These results suggest early accretion of carbonaceous material by proto-Earth and rule out any combination of hydrodynamic loss with outgassing of the deep or shallow mantle to explain atmospheric noble gases. Unexpectedly, the deep-mantle sources have a deficit in the neutron-rich Kr relative to the average composition of carbonaceous meteorites, which suggests a nucleosynthetic anomaly. Although the relative depletion of neutron-rich isotopes on Earth compared with carbonaceous meteorites has been documented for a range of refractory elements, our observations suggest such a depletion for a volatile element. This finding indicates that accretion of volatile and refractory elements occurred simultaneously, with krypton recording concomitant accretion of non-solar volatiles from more than one type of material, possibly including outer Solar System planetesimals.
确定碳、氮和水何时以及从何处输送到地球,是理解地球等可居住行星起源的基本目标。然而,挥发性物质向地球的输送仍然存在争议。由于氪同位素在来源之间存在大量的同位素变化,因此它们提供了对挥发性物质输送的深入了解,尽管普遍存在的大气污染阻碍了分析工作。在这里,我们展示了来自加拉帕戈斯和冰岛羽流深部地幔的全套氪同位素,这些羽流具有最原始的氦、氖和钨同位素组成。除了 Kr,氪同位素组成与球粒陨石和大气氪的混合物相似。这些结果表明,原始地球早期就已经积累了碳质物质,并排除了任何与深或浅地幔的流体动力损失与逸出气相结合的组合,以解释大气中的惰性气体。出乎意料的是,与碳质陨石的平均组成相比,深部地幔来源的富中子 Kr 存在亏缺,这表明存在核合成异常。尽管与碳质陨石相比,地球上富含中子的同位素相对匮乏已被记录在一系列难熔元素中,但我们的观察结果表明,挥发性元素也存在这种匮乏。这一发现表明,挥发性和难熔元素的同时吸积,氪记录了来自多种物质的非太阳挥发物的同时吸积,可能包括太阳系外的星子。