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A new high-pressure form of Mg2SiO4 highlighting diffusionless phase transitions of olivine

机译:一种新的高压形式的Mg2SiO4突出了橄榄石的无扩散相变

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摘要

High-pressure polymorphism of olivine (α-phase of Mg2SiO4) is of particular interest for geophysicists aiming to understand the structure and dynamics of the Earth’s interior because of olivine’s prominent abundance in the upper mantle. Therefore, natural and synthetic olivine polymorphs have been actively studied in the past half century. Here, we report a new high-pressure polymorph, the ε*-phase, which was discovered in a heavily shocked meteorite. It occurs as nanoscale lamellae and has a topotaxial relationship with the host ringwoodite (γ-phase of Mg2SiO4). Olivine in the host rock entrapped in a shock-induced melt vein initially transformed into polycrystalline ringwoodite through a nucleation and growth mechanism. The ringwoodite grains then coherently converted into the ε*-phase by shear transformation during subsequent pressure release. This intermediate metastable phase can be formed by all Mg2SiO4 polymorphs via a shear transformation mechanism. Here, we propose high-pressure transformations of olivine that are enhanced by diffusionless processes, not only in shocked meteorites but also in thick and cold lithosphere subducting into the deep Earth.
机译:橄榄石的高压多态性(Mg2SiO4的α相)对地球物理学家特别感兴趣,因为他们了解上层地幔中橄榄石的丰富性,旨在了解地球内部的结构和动力学。因此,在过去的半个世纪中,已经积极研究了天然和合成的橄榄石多晶型物。在这里,我们报告了一个新的高压多晶型物ε*相,它是在剧烈震动的陨石中发现的。它以纳米级薄片的形式出现,并且与主体菱铁矿(Mg2SiO4的γ相)具有轴心关系。宿主岩石中的橄榄石包裹在激波诱发的熔融矿脉中,最初通过成核和生长机制转变为多晶林伍德石。然后,在随后的压力释放过程中,通过剪切转变,林木岩晶粒连贯地转变为ε*相。中间的亚稳态相可以通过剪切转变机理由所有Mg2SiO4多晶型物形成。在这里,我们提出了橄榄石的高压转变,这种转变通过无扩散过程增强,不仅在震惊的陨石中,而且在俯冲到深地球的厚而冷的岩石圈中也是如此。

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