地幔(地质学)
地质学
行星分化
地壳再循环
地球化学
地幔楔
热点(地质)
过渡带
核幔边界
太古宙
嗜石者
地幔柱
玄武岩
放射性核素
俯冲
岩石圈
地球物理学
部分熔融
大陆地壳
构造学
古生物学
作者
Hanika Rizo,D. Andrault,Neil Bennett,M. Humayun,A. D. Brandon,Ivan Vlastelić,Bertrand Moine,André Poirier,M. A. Bouhifd,David T. Murphy
标识
DOI:10.7185/geochemlet.1917
摘要
Tungsten isotopes are the ideal tracers of core-mantle chemical interaction.Given that W is moderately siderophile, it preferentially partitioned into the Earth's core during its segregation, leaving the mantle depleted in this element.In contrast, Hf is lithophile, and its short-lived radioactive isotope 182 Hf decayed entirely to 182 W in the mantle after metal-silicate segregation.Therefore, the 182 W isotopic composition of the Earth's mantle and its core are expected to differ by about 200 ppm.Here, we report new high precision W isotope data for mantle-derived rock samples from the Paleoarchean Pilbara Craton, and the Réunion Island and the Kerguelen Archipelago hotspots.Together with other available data, they reveal a temporal shift in the 182 W isotopic composition of the mantle that is best explained by core-mantle chemical interaction.Core-mantle exchange might be facilitated by diffusive isotope exchange at the core-mantle boundary, or the exsolution of W-rich, Si-Mg-Fe oxides from the core into the mantle.Tungsten-182 isotope compositions of mantle-derived magmas are similar from 4.3 to 2.7 Ga and decrease afterwards.This change could be related to the onset of the crystallisation of the inner core or to the initiation of post-Archean deep slab subduction that more efficiently mixed the mantle.
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