Electronic correlations in dense iron: from moderate pressure to Earth's core conditions
Leonid V. Pourovskii

TL;DR
This paper explores how dynamical many-electron effects influence iron's electronic properties under various pressures, including Earth's core conditions, revealing phase-dependent correlations and their impact on physical characteristics.
Contribution
It applies dynamical mean-field theory to analyze iron's electronic correlations across different phases and extreme conditions, providing new insights into core-like environments.
Findings
Enhanced electronic correlations at the alpha-Fe to epsilon-Fe transition
Prediction of an electronic topological transition in epsilon-Fe
Distinct many-electron effects in different iron phases at core conditions
Abstract
We discuss the role of dynamical many-electron effects in the physics of iron and iron-rich solid alloys under applied pressure on the basis of recent ab initio studies employing the dynamical mean-field theory (DMFT). Electronic correlations in iron in the moderate pressure range up to 60 GPa are discussed in the first section. DMFT-based methods predict an enhancement of electronic correlations at the pressure-induced transition from body-centered cubic (bcc) alpha-Fe to hexagonal close-packed (hcp) epsilon-Fe. In particular, the electronic effective mass, scattering rate and electron-electron contribution to the electrical resistivity undergo a step-wise increase at the transition point. One also finds a significant many-body correction to the epsilon-Fe equation of state, thus clarifying the origin of discrepancies between previous DFT studies and experiment. An electronic…
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