Structural, spin, and metal-insulator transitions of (Mg,Fe)O at ultrahigh pressure

Abstract

Fe-bearing MgO [(Mg1βˆ’x_{1-x}Fex_x)O] is considered a major constituent of terrestrial exoplanets. Crystallizing in the B1 structure in the Earth's lower mantle, (Mg1βˆ’x_{1-x}Fex_x)O undergoes a high-spin (HS, S=2S=2) to low-spin (LS, S=0S=0) transition at ∼\sim45 GPa, accompanied by anomalous changes of this mineral's physical properties, while the intermediate-spin (IS, S=1S=1) state has not been observed. In this work, we investigate (Mg1βˆ’x_{1-x}Fex_x)O (x≀0.25x \leq 0.25) up to 1.81.8 TPa via first-principles calculations. Our calculations indicate that (Mg1βˆ’x_{1-x}Fex_x)O undergoes a simultaneous structural and spin transition at ∼\sim0.6 TPa, from the B1 phase LS state to the B2 phase IS state, with Fe's total electron spin (SS) re-emerging from 00 to 11 at ultrahigh pressure. Upon further compression, an IS--LS transition occurs in the B2 phase. Depending on the Fe concentration (xx), metal--insulator transition and rhombohedral distortions can also occur in the B2 phase. These results suggest that Fe and spin transition may affect planetary interiors over a vast pressure range

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