HR: 1340h
AN: MR23C-1523 [Abstracts]
TI: First-Principles Prediction of Crystal Structures at High Temperatures Using the Quasiharmonic Approximation
AU: * Carrier, P
EM: Pierre.Carrier@cems.umn.edu
AF: Minnesota Supercomputing Institute and Department of Chemical Engineering and
Materials Science, University of Minnesota, 151 Amundson Hall, 421 Washington Avenue SE, Minneapolis, MN
55455,
AU: Wentzcovitch, R
EM: wentzcov@cems.umn.edu
AF: Minnesota Supercomputing Institute and Department of Chemical Engineering and
Materials Science, University of Minnesota, 151 Amundson Hall, 421 Washington Avenue SE, Minneapolis, MN
55455,
AU: Tsuchiya, J
EM: junt@sci.ehime-u.ac.jp
AF: Geodynamics Research Center, Ehime University, 2-5 Bunkyo-cho, Matsuyama, 790-8577,
Japan
AB:
We show here how first-principles quasiharmonic approximation (QHA) calculations in its simplest statically
constrained form can be used to predict crystal structures at high temperatures. This approximation has been
extensively used to investigate thermodynamic properties of Earth forming minerals and has offered excellent
results for the major mantle phases at relevant conditions. We carefully compare QHA predictions of crystal
structures using the local density approximation with crystallographic data in MgSiO3 perovskite at high
pressures and temperatures. Small but systematic deviations in the lattice parameters (at most 0.3%) appear at
high temperatures (T>2000 K) and are associated with the development of deviatoric thermal stresses. An
iterative scheme is proposed to eliminate these spurious thermal stresses and further improve the quality of the
predictions of this popular and successful thermodynamics method.
DE: 0545 Modeling (4255)
DE: 3238 Prediction (3245, 4263)
DE: 3611 Thermodynamics (0766, 1011, 8411)
DE: 3909 Elasticity and anelasticity
DE: 3949 Thermal expansivity
SC: Mineral and Rock Physics [MR]
MN: 2007 Fall Meeting