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Elastic softening in Fe7C3 with implications for Earth's deep carbon reservoirs

机译:Fe7C3中的弹性软化对地球深层碳储层有影响

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Iron carbide Fe7C3 has recently emerged as a potential host of reduced carbon in Earth's mantle and a candidate component of the inner core, but the equation of state of Fe7C3 is still uncertain, partly because the nature of pressure-induced magnetic transitions in Fe7C3 and their elastic effects remain controversial. Here we report the compression curve of hexagonal Fe7C3 in neon medium with dense pressure sampling and in comparison with pure iron in the same loading. The results revealed elastic softening between 7GPa and 20GPa, which can be attributed to noncollinear alignment of spin moments in a state between the ferromagnetic and paramagnetic phases, as expected for Invar-type alloys. The volume reduction associated with the softening would enhance the stability of Fe7C3 in the deeper part of the upper mantle and transition zone. As a result of subsequent spin crossover at higher pressures, Fe7C3 at inner core conditions likely occurs as the nonmagnetic phase, which remains a candidate for the major component of the Earth's central sphere.
机译:碳化铁Fe7C3最近成为地球地幔中潜在的还原碳宿主和内核的候选成分,但Fe7C3的状态方程仍不确定,部分原因是Fe7C3的压力感应磁跃迁及其性质弹性效应仍存在争议。在这里,我们报告了在高压介质下氖气介质中六角形Fe7C3的压缩曲线,并与相同负荷下的纯铁进行了比较。结果表明,弹性软化在7GPa和20GPa之间,这可以归因于铁磁性相和顺磁性相之间的状态下自旋矩的非共线对准,这是Invar型合金所期望的。与软化有关的体积减小将增强上地幔和过渡带较深部分中Fe7C3的稳定性。由于随后在更高的压力下发生自旋交叉,Fe7C3在内核条件下可能会以非磁性相的形式出现,这仍然是地球中心球主要成分的候选者。

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