The structure and stability of Fe4+xS3 and its potential to form a Martian inner core
Abstract
Abstract Seismic, geodetic and cosmochemical evidence point to Mars having a sulfur-rich liquid core. Due to the similarity between estimates of the core’s sulfur content and the iron–iron sulfide eutectic composition at core conditions, it has been concluded that temperatures are too high for Mars to have an inner core. Recent low density estimates for the core, however, appear consistent with sulfur contents that are higher than the eutectic composition, leading to the possibility that an inner core could form from a high-pressure iron sulfide phase. Here we report the crystal structure of a phase with the formula Fe 4+x S 3 , the iron content of which increases with temperature, approaching the stoichiometry Fe 5 S 3 under Martian inner core conditions. We show that Fe 4+x S 3 has a higher density than the liquid Martian core and that a Fe 4+x S 3 inner core would crystalize if temperatures fall below 1960 (±105) K at the center of Mars.
Article Details
Authors (15)
Lianjie Man
Xiang Li
Tiziana Boffa Ballaran
Wenju Zhou
Center for High Pressure Science and Technology Advanced Research
Julien Chantel
Adrien Néri
Ilya Kupenko
Georgios Aprilis
European Synchrotron Radiation Facility, CS 40220, 38043 Grenoble Cedex 9, France
Alexander Kurnosov
P. N. Lebedev Physical Institute 3 , Moscow,
Olivier Namur
Michael Hanfland
European Synchrotron Radiation Facility
Nicolas Guignot
Laura Henry
Leonid Dubrovinsky
Bavarian Research Institute of Experimental Geochemistry and Geophysics (BGI)
Daniel. J. Frost