Crystal structure and equation of state of Fe-Si alloys at super-Earth core conditions
Author(s) -
J. K. Wicks,
R. F. Smith,
D. E. Fratanduono,
F. Coppari,
Richard Kraus,
M. Newman,
J. R. Rygg,
J. H. Eggert,
T. S. Duffy
Publication year - 2018
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aao5864
Subject(s) - earth (classical element) , alloy , planet , core (optical fiber) , materials science , equation of state , crystal structure , astrobiology , crystal (programming language) , chemical physics , crystallography , physics , chemistry , thermodynamics , astrophysics , metallurgy , composite material , computer science , astronomy , programming language
The high-pressure behavior of Fe alloys governs the interior structure and dynamics of super-Earths, rocky extrasolar planets that could be as much as 10 times more massive than Earth. In experiments reaching up to 1300 GPa, we combine laser-driven dynamic ramp compression with in situ x-ray diffraction to study the effect of composition on the crystal structure and density of Fe-Si alloys, a potential constituent of super-Earth cores. We find that Fe-Si alloy with 7 weight % (wt %) Si adopts the hexagonal close-packed structure over the measured pressure range, whereas Fe-15wt%Si is observed in a body-centered cubic structure. This study represents the first experimental determination of the density and crystal structure of Fe-Si alloys at pressures corresponding to the center of a ~3-Earth mass terrestrial planet. Our results allow for direct determination of the effects of light elements on core radius, density, and pressures for these planets.
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