Insight of the thermal conductivity of $\epsilon-$iron at Earth's core conditions from the newly developed direct $ab~initio$ methodology
Sheng-Ying Yue, Ming Hu

TL;DR
This paper introduces a novel direct ab initio methodology to accurately predict the electronic thermal conductivity of epsilon-iron under Earth's core conditions, incorporating electron-electron and electron-phonon interactions.
Contribution
The study develops a new non-equilibrium ab initio molecular dynamics approach that includes electron-electron and electron-phonon scattering for thermal conductivity prediction.
Findings
Results align with previous experimental and theoretical data.
Method offers a new physical perspective on heat transfer in Earth's core.
Provides a versatile approach for studying thermal transport in planetary metals.
Abstract
The electronic thermal conductivity of iron at Earth's core conditions is an extremely important physical property in geophysics field. However, the exact value of electronic thermal conductivity of iron under extreme pressure and temperature still remains poorly known both experimentally and theoretically. A few recent experimental studies measured the value of the electronic thermal conductivity directly and some theoretical works have predicted the electronic thermal conductivity of iron at Earth's core conditions based on the Kubo-Greenwood method. However, these results differ largely from each other. A very recent research has confirmed that for iron at Earth's core conditions the strength of electron-electron scattering could be comparable to that for electron-phonon scattering, meaning that the electron-electron scattering should also be considered when evaluating the electronic…
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