Science · 2009 · 252 citations · 28 references
EngineeringIron PartitioningChemical CompositionLower MantleGeologyDensity ChangesEarth SciencesGeochemistryIron Ion Fe3+Mineral GeochemistryCrust-mantle InteractionEarth ScienceMantle GeochemistryTectonics
Phase transitions and the chemical composition of minerals in Earth's interior influence geophysical interpretations of its deep structure and dynamics. A pressure-induced spin transition in olivine has been suggested to influence iron partitioning and depletion, resulting in a distinct layered structure in Earth's lower mantle. For a more realistic mantle composition (pyrolite), we observed a considerable change in the iron-magnesium partition coefficient at about 40 gigapascals that is explained by a spin transition at much lower pressures. However, only a small depletion of iron is observed in the major high-pressure phase (magnesium silicate perovskite), which may be explained by preferential retention of the iron ion Fe3+. Changes in mineral proportions or density are not associated with the change in partition coefficient. The observed density profile agrees well with seismological models, which suggests that pyrolite is a good model composition for the upper to middle parts of the lower mantle.
28
Preliminary reference Earth model
Adam M. Dziewoński, Don L. Anderson · Physics of The Earth and Planetary Interiors · 1981 · 10.2K citations
Post-Perovskite Phase Transition in MgSiO <sub>3</sub>
Motohiko Murakami, Kei Hirose, Katsuyuki Kawamura et al. · Science · 2004 · 1.3K citations
Iron Partitioning in Earth's Mantle: Toward a Deep Lower Mantle Discontinuity
James Badro, G. Fiquet, François Guyot et al. · Science · 2003 · 521 citations