Department of Terrestrial Magnetism, Carnegie Institution for Science, Washington DC 20015, USA.
Geosciences Research Division, Scripps Institution of Oceanography, University of California San Diego, La Jolla, California 92093, USA.
Nature. 2018 Feb 28;555(7694):89-93. doi: 10.1038/nature25754.
Active volcanic hotspots can tap into domains in Earth's deep interior that were formed more than two billion years ago. High-precision data on variability in tungsten isotopes have shown that some of these domains resulted from differentiation events that occurred within the first fifty million years of Earth history. However, it has not proved easy to resolve analogous variability in neodymium isotope compositions that would track regions of Earth's interior whose composition was established by events occurring within roughly the first five hundred million years of Earth history. Here we report Nd/Nd ratios for Réunion Island igneous rocks, some of which are resolvably either higher or lower than the ratios in modern upper-mantle domains. We also find that Réunion Nd/Nd ratios correlate with helium-isotope ratios (He/He), suggesting parallel behaviour of these isotopic systems during very early silicate differentiation, perhaps as early as 4.39 billion years ago. The range of Nd/Nd ratios in Réunion basalts is inconsistent with a single-stage differentiation process, and instead requires mixing of a conjugate melt and residue formed in at least one melting event during the Hadean eon, 4.56 billion to 4 billion years ago. Efficient post-Hadean mixing nearly erased the ancient, anomalous Nd/Nd signatures, and produced the relatively homogeneous Nd/Nd composition that is characteristic of Réunion basalts. Our results show that Réunion magmas tap into a particularly ancient, primitive source compared with other volcanic hotspots, offering insight into the formation and preservation of ancient heterogeneities in Earth's interior.
活火山热点可以深入到地球内部形成于 20 多亿年前的区域。对钨同位素变化的高精度数据表明,其中一些区域是由地球历史最初 5 亿年发生的分化事件形成的。然而,要解决类似的钕同位素组成的可变性并不容易,这些变化可以追踪到地球内部的区域,其组成是由地球历史最初大约 5 亿年发生的事件确定的。在这里,我们报告了留尼汪岛火成岩的 Nd/Nd 比值,其中一些比值明显高于或低于现代地幔上部区域的比值。我们还发现,留尼汪岛 Nd/Nd 比值与氦同位素比值(He/He)相关,表明这些同位素体系在早期硅酸盐分化过程中存在平行行为,可能早在 43.9 亿年前就出现了。留尼汪玄武岩的 Nd/Nd 比值范围与单一阶段的分化过程不一致,而需要混合在至少一次熔融事件中形成的共轭熔体和残留物,该熔融事件发生在 45.6 亿至 40 亿年前的冥古宙时期。冥古宙之后的有效混合几乎抹去了古老的、异常的 Nd/Nd 特征,产生了留尼汪玄武岩特有的相对均匀的 Nd/Nd 组成。我们的结果表明,与其他火山热点相比,留尼汪岩浆深入到一个特别古老、原始的源区,这为了解地球内部古老的不均匀性的形成和保存提供了线索。