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Effects of the electronic spin transitions of iron in lower mantle minerals: Implications for deep mantle geophysics and geochemistry

机译:下地幔矿物中铁的电子自旋跃迁的影响:对深地幔地球物理学和地球化学的影响

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We have critically reviewed and discussed currently available information regarding the spin and valence states of iron in lower mantle minerals and the associated effects of the spin transitions on physical, chemical, and transport properties of the deep Earth. A high-spin to low-spin crossover of Fe ~(2+) in ferropericlase has been observed to occur at pressure-temperature conditions corresponding to the middle part of the lower mantle. In contrast, recent studies consistently show that Fe~(2+) predominantly exhibits extremely high quadrupole splitting values in the pseudo-dodecahedral site (A site) of perovskite and post-perovskite, indicative of a strong lattice distortion. Fe~(3+) in the A site of these structures likely remains in the high-spin state, while a high-spin to low-spin transition of Fe~(3+) in the octahedral site of perovskite occurs at pressures of 15-50 GPa. In post-perovskite, the octahedral-site Fe~(3+) remains in the low-spin state at the pressure conditions of the lowermost mantle. These changes in the spin and valence states of iron as a function of pressure and temperature have been reported to affect physical, chemical, rheological, and transport properties of the lower mantle minerals. The spin crossover of Fe~(2+) in ferropericlase has been documented to affect these properties and is discussed in depth here, whereas the effects of the spin transition of iron in perovskite and post-perovskite are much more complex and remain debated. The consequences of the transitions are evaluated in terms of their implications to deep Earth geophysics, geochemistry, and geodynamics including elasticity, element partitioning, fractionation and diffusion, and rheological and transport properties. Key Points Spin states of iron in lower-mantle minerals are reviewed. Effects of the transitions are addressed. Implications of the transitions are discussed.
机译:我们已经严格地审查和讨论了有关下地幔矿物中铁的自旋和价态以及自旋跃迁对深地球的物理,化学和运输性质的相关影响的当前可用信息。观察到在对应于下地幔中部的压力-温度条件下,铁镁硅石中的Fe〜(2+)发生了高旋向低旋的转变。相反,最近的研究一致表明,Fe〜(2+)在钙钛矿和钙钛矿后的假十二面体部位(A部位)主要表现出极高的四极分裂值,表明晶格畸变很强。这些结构的A位中的Fe〜(3+)可能保持高自旋状态,而钙钛矿八面体中Fe〜(3+)的高自旋转变为低自旋转变是在15的压力下发生的。 -50 GPa。在钙钛矿后,八面体位Fe〜(3+)在最下地幔的压力条件下保持低自旋状态。据报道,铁的自旋和化合价状态随压力和温度的变化会影响下地幔矿物的物理,化学,流变和传输特性。已经证明Fe〜(2+)在阿魏酸酯酶中的自旋交叉会影响这些性质,并在此进行深入讨论,而铁在钙钛矿和钙钛矿后的自旋转变的影响要复杂得多,并且仍在争论中。根据过渡对深地球地球物理学,地球化学和地球动力学(包括弹性,元素分配,分馏和扩散以及流变和运输特性)的影响,评估了过渡的后果。要点回顾了下地幔矿物中铁的自旋态。解决了过渡的影响。讨论了转换的含义。

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