Mercury’s metallic core is expected to have formed under highly reducing conditions, resulting in the presence of significant quantities of silicon alloyed to iron. Here we present the phase diagram of the Fe-FeSi system, reconstructed from in situ X-ray diffraction measurements at pressure and temperature conditions spanning over those expected for Mercury’s core, and ex situ chemical analysis of recovered samples. Under high pressure, we do not observe a miscibility gap between the cubic fcc and B2 structures, but rather the formation of a re-entrant bcc phase at temperatures close to melting. Upon melting, the investigated alloys are observed to evolve towards two distinct Fe-rich and Fe-poor liquid compositions at pressures below 35-38 ...
The Earth's core is expected to contain around 10 wt % light elements (S, Si, O, possibly C, H, etc....
Abstract 17 The outer core of the Earth contains several weight percent of one or more unknown light...
The high-pressure behavior of Fe alloys governs the interior structure and dynamics of super-Earths,...
International audienceMercury’s metallic core is expected to have formed under highly reducing condi...
International audienceSolid iron-silicon alloys play an important role in planetary cores, especiall...
Abstract The phase and melting relations in the Fe–S–Si system were determined up to 60 GPa by using...
Phase relations in Fe–5 wt%Ni–4 wt%Si alloy was examined in an internally resistive heated diamond a...
International audienceEarth's core is an iron-rich alloy containing several weight percent of light ...
Phase relations of an Fe0.85Si0.15 alloy were investigated up to 240 GPa and 3000 K using in situ X-...
International audienceFe-S-Si immiscibility has been investigated using in situ X-ray methods at hig...
[1] The Earth’s core is expected to contain around 10 wt % light elements (S, Si, O, possibly C, H, ...
International audienceSulfur and silicon are among the expected alloying light elements in planetary...
International audienceHigh pressure melting behavior of three Fe-alloys containing 5 wt% Ni and (1) ...
The Earth's core is expected to contain around 10 wt % light elements (S, Si, O, possibly C, H, etc....
Abstract 17 The outer core of the Earth contains several weight percent of one or more unknown light...
The high-pressure behavior of Fe alloys governs the interior structure and dynamics of super-Earths,...
International audienceMercury’s metallic core is expected to have formed under highly reducing condi...
International audienceSolid iron-silicon alloys play an important role in planetary cores, especiall...
Abstract The phase and melting relations in the Fe–S–Si system were determined up to 60 GPa by using...
Phase relations in Fe–5 wt%Ni–4 wt%Si alloy was examined in an internally resistive heated diamond a...
International audienceEarth's core is an iron-rich alloy containing several weight percent of light ...
Phase relations of an Fe0.85Si0.15 alloy were investigated up to 240 GPa and 3000 K using in situ X-...
International audienceFe-S-Si immiscibility has been investigated using in situ X-ray methods at hig...
[1] The Earth’s core is expected to contain around 10 wt % light elements (S, Si, O, possibly C, H, ...
International audienceSulfur and silicon are among the expected alloying light elements in planetary...
International audienceHigh pressure melting behavior of three Fe-alloys containing 5 wt% Ni and (1) ...
The Earth's core is expected to contain around 10 wt % light elements (S, Si, O, possibly C, H, etc....
Abstract 17 The outer core of the Earth contains several weight percent of one or more unknown light...
The high-pressure behavior of Fe alloys governs the interior structure and dynamics of super-Earths,...