Quasi-hydrostatic compression of magnesium oxide to 52 GPa: Implications for the pressure-volume-temperature equation of state

Citation
S. Speziale et al., Quasi-hydrostatic compression of magnesium oxide to 52 GPa: Implications for the pressure-volume-temperature equation of state, J GEO R-SOL, 106(B1), 2001, pp. 515-528
Citations number
85
Categorie Soggetti
Earth Sciences
Journal title
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH
ISSN journal
21699313 → ACNP
Volume
106
Issue
B1
Year of publication
2001
Pages
515 - 528
Database
ISI
SICI code
0148-0227(20010110)106:B1<515:QCOMOT>2.0.ZU;2-A
Abstract
Room temperature static compression of MgO (periclase) was performed under nearly hydrostatic conditions using energy dispersive synchrotron X-ray dif fraction in a diamond anvil cell with methanol-ethanol (to 10 GPa) or heliu m (to 52 GPa) as a pressure-transmitting medium. Highly precise cell parame ters were determined with an average relative standard deviation <<Delta>a/ a> = 0.0003 over all the experimental pressure range. Fixing the bulk modul us K-0T = 160.2 GPa, a fit of the data to the third-order Birch-Murnaghan e quation of state yields: V-0 = 74.71 +/- 0.01 Angstrom (3), (partial deriva tiveK(0T)/partial derivativeP)(T) = 3.99 +/- 0.01. A fit of different P-V-T datasets, ranging to 53 GPa and 2500 K, to a Birch-Murnghhan-Debye thermal equation of state constrained the Gruneisen parameter gamma (0) = 1.49 +/- 0.03, but not its volume dependence q, which was constrained to 1.65 +/- 0 .4 by thermodynamic theory. A model based on a constant value of q cannot e xplain the ultrahigh pressure (P = 174-203 GPa) shock compression data. We developed a model in which q decreases with compression from 1.65 at 0.1 MP a to 0.01 at 200 GPa. This model, within the framework of the Mie-Gruneisen -Debye assumptions, satisfactorily describes the low-pressure static data ( <<Delta>V/V> = 0,4% to 53 GPa) and the high-pressure Hugoniot data (<<Delta >V/V> < 1% to 203 GPa). Average values of the thermal expansion coefficient a range between 14.1 +/- 2.8 and 16.3 +/- 2.7 x 10(-6) K-1 at P = 174-203 GPa. The pressure dependence of the melting temperature yields an initial p ressure derivative <partial derivative>T-m/partial derivativeP = 98 K/GPa. Our analysis shows that it is possible to develop a simple model of the vol ume dependence of the Gruneisen parameter that can successfully describe th e P-V-T equation of state of MgO from ambient conditions to 203 GPa and 366 3 K.