Anisotropy of Earth's D" layer and stacking faults in the MgSiO3 post-perovskite phase
arXiv:0911.3185 · doi:10.1038/nature04439
Abstract
The post-perovskite phase of (Mg,Fe)SiO3 is believed to be the main mineral phase of the Earth's lowermost mantle (the D" layer). Its properties explain numerous geophysical observations associated with this layer - for example, the D'' discontinuity, its topography and seismic anisotropy within the layer. Here we use a novel simulation technique, first-principles metadynamics, to identify a family of low-energy polytypic stacking-fault structures intermediate between the perovskite and post-perovskite phases. Metadynamics trajectories identify plane sliding involving the formation of stacking faults as the most favourable pathway for the phase transition, and as a likely mechanism for plastic deformation of perovskite and postperovskite. In particular, the predicted slip planes are (010) for perovskite (consistent with experiment) and (110) for postperovskite (in contrast to the previously expected (010) slip planes). Dominant slip planes define the lattice preferred orientation and elastic anisotropy of the texture. The (110) slip planes in post-perovskite require a much smaller degree of lattice preferred orientation to explain geophysical observations of shear-wave anisotropy in the D" layer.
Published in Nature 438, 1142-1144 (2005)
References in corpus (1)
Cited by in corpus (10)
- Well-Tempered Metadynamics: A Smoothly Converging and Tunable Free-Energy Method
- PLUMED: a portable plugin for free-energy calculations with molecular dynamics
- Equilibrium free energies from non-equilibrium metadynamics
- Stability of xenon oxides at high pressures
- Evolutionary Metadynamics: a Novel Method to Predict Crystal Structures
- MUSE: Multi-algorithm collaborative crystal structure prediction
- Prediction of a Stable Post-Post-Perovskite Structure from First Principles
- Determination of ground-state and low-energy structures of perovskite superlattices from first principles
- High-pressure order-disorder transition in MgSiO: Implications for super-Earth mineralogy
- Evolutionary crystal structure prediction and novel high-pressure phases