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High pressure elastic properties of minerals from ab initio simulations: the case of pyrope, grossular and andradite silicate garnets
- Publication Year :
- 2014
-
Abstract
- A computational strategy is devised for the accurate ab initio simulation of elastic properties of crystalline materials under pressure. The proposed scheme, based on the evaluation of the analytical stress tensor and on the automated computation of pressure-dependent elastic stiffness constants, is implemented in the CRYSTAL solid state quantum-chemical program. Elastic constants and related properties (bulk, shear and Young moduli, directional seismic wave velocities, elastic anisotropy index, Poisson's ratio, etc.) can be computed for crystals of any space group of symmetry. We apply such a technique to the study of high-pressure elastic properties of three silicate garnet end-members (namely, pyrope, grossular, and andradite) which are of great geophysical interest, being among the most important rock-forming minerals. The reliability of this theoretical approach is proved by comparing with available experimental measurements. The description of high-pressure properties provided by several equations of state is also critically discussed.
- Subjects :
- Materials science
Grossular
biology
Cauchy stress tensor
Ab initio
General Physics and Astronomy
Mineralogy
Thermodynamics
Young's modulus
biology.organism_classification
Poisson's ratio
Pyrope
symbols.namesake
Andradite
Silicate minerals
visual_art
visual_art.visual_art_medium
symbols
Physical and Theoretical Chemistry
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Accession number :
- edsair.doi.dedup.....a2a191804cf6bba606c4bd1801ccdad6