PBE-GGA predicts the B8↔B2 phase boundary of FeO at Earth's core conditions

ORAL · Invited

Abstract

FeO is a crucial component of the Earth’s core, and its thermodynamic properties are essential to developing more accurate core models. It is also a notorious correlated insulator in the NaCl-type (B1) phase at ambient conditions. It undergoes two polymorphic transitions at 300 K before it becomes metallic in the NiAs-type (B8) structure at ~100 GPa. Although its phase diagram is not fully mapped, it is well established that the B8 phase transforms to the CsCl-type (B2) phase at core pressures and temperatures. Here we report a successful ab initio calculation of the B8↔B2 phase boundary in FeO at Earth’s core pressures. We show that fully anharmonic free energies computed with the PBE-GGA coupled with thermal electronic excitations reproduce the experimental phase boundary within uncertainties at P > 255 GPa, including the largely negative Clapeyron slope of –52 MPa/K. This study validates the applicability of a standard DFT functional to FeO under Earth’s core conditions and demonstrates the theoretical framework that enables complex predictive studies of this region.

* Research supported by DOE grant DE-SC0019759

Publication: Zhen Zhang, Yang Sun, and Renata M. Wentzcovitch, PBE-GGA predicts the B8↔B2 phase boundary of FeO at Earth's core conditions, Proceedings of the National Academy of Sciences of the United States of America 120, e2304726120 (2023).

Presenters

  • Zhen Zhang

    Columbia University

Authors

  • Zhen Zhang

    Columbia University

  • Yang Sun

    Xiamen University, Columbia University

  • Renata Maria M Wentzcovitch

    Columbia University