This work represents a numerical study of the thermal activation for dislocation glide of the [100](010) slip system in MgSiO post-perovskite (Mg-ppv) at 120 GPa. We propose an approach based on a one-dimensional line tension model in conjunction with atomic-scale calculations. In this model, the key parameters, namely, the line tension and the Peierls barrier, are obtained from density functional theory calculations. We find a Peierls stress σ = 2.1 GPa and a line tension Γ = 9.2 eV/Å, which lead to a kink-pair enthalpy (under zero stress) of 2.69 eV. These values confirm that this slip system bears a very low lattice friction because it vanishes for temperatures above approximately 500 K under mantle conditions. In the Earth's mantle, high-pressure Mg-ppv silicate is thus expected to become as ductile as ferropericlase. These results confirm the hypothesis of a weak layer in the D″ layer where Mg-ppv is present. Easy glide along [100](010) suggests strong preferred orientations with (010) planes aligned. Highly mobile [100] dislocations are also likely to respond to stresses related to seismic waves, leading to energy dissipation and strong attenuation.
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http://dx.doi.org/10.1038/srep34771 | DOI Listing |
J Phys Condens Matter
July 2024
Geodynamics Research Center, Ehime University, 2-5 Bunkyo-cho, Matsuyama, Ehime 790-8577, Japan.
The lattice thermal conductivities (κlat) of Earth's lower mantle (LM) minerals is a crucial parameter in the study of deep Earth dynamics and its determination is also one of the grand challenges in condensed matter physics. Here, we review recent progress on theoretical and experimental studies for theκlatunder high pressure () and high temperature () condition up to 150 GPa and 4000 K. After the critical parameters necessary to obtain converged values of theκlatare summarized, the theoreticalκlatof the LM minerals, determined through various computational methodologies, is compiled along with experimental findings.
View Article and Find Full Text PDFProc Natl Acad Sci U S A
September 2019
Department of Geosciences, Princeton University, Princeton, NJ 08544.
Neighborite, NaMgF is used as a model system for understanding phase transitions in ABX systems (e.g., MgSiO) at high pressures.
View Article and Find Full Text PDFSci Rep
December 2017
Univ. Lille, CNRS, INRA, ENSCL, UMR 8207 UMET - Unité Matériaux et Transformations, F-59000, Lille, France.
The plastic properties of MgSiO post-perovskite are considered to be one of the key issues necessary for understanding the seismic anisotropy at the bottom of the mantle in the so-called D" layer. Although plastic slip in MgSiO post-perovskite has attracted considerable attention, the twinning mechanism has not been addressed, despite some experimental evidence from low-pressure analogues. On the basis of a numerical mechanical model, we present a twin nucleation model for post-perovskite involving the emission of 1/6 <110> partial dislocations.
View Article and Find Full Text PDFPhys Chem Miner
March 2017
UMET-Unité Matériaux et Transformations, CNRS, INRA, ENSCL, UMR 8207, Univ. Lille, 59000 Lille, France.
In this study, we investigate the complex structure of [001] screw and edge dislocation cores in MgSiO post-perovskite at the atomic scale. Both [001] screw and edge dislocations exhibit spontaneous dissociation in (010) into two symmetric partials characterized by the presence of <100> component. In case of edge dislocations, dissociation occurs into ½<101> partials, while for the screw dislocations the <100> component reaches only 15%.
View Article and Find Full Text PDFSci Rep
November 2016
Institute for Solid State Physics, University of Tokyo, Kashiwanoha 5-1-5, Kashiwa, Chiba, 277-8581, Japan.
The discovery of the post-perovskite transition, which is the structural transition from the perovskite to post-perovskite structure in MgSiO under pressure, has aroused great interests in geosciences. Despite of previous extensive studies, key factors of the post-perovsktie transition are still under hot debate primarily due to the big difficulty in performing systematic experiments under extreme conditions. Hence, search for new materials showing the post-perovskite transition under ambient pressure has been highly expected.
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