Orbital-selective coherence-incoherence crossover and metal-insulator transition in Cu-doped NaFeAs
S. L. Skornyakov, V. I. Anisimov, I. Leonov

TL;DR
This study uses advanced computational methods to explore how Cu doping induces orbital-dependent localization, coherence-incoherence crossover, and a Mott metal-insulator transition in NaFeAs, revealing the crucial role of electron correlations.
Contribution
It provides a detailed theoretical analysis of the orbital-selective Mott transition and electronic structure evolution in Cu-doped NaFeAs using DFT+DMFT, highlighting the importance of correlations and disorder.
Findings
Orbital-dependent localization of Fe 3d states upon Cu doping.
Observation of a coherence-incoherence crossover in electronic states.
Identification of a Mott insulator phase at high Cu doping levels.
Abstract
We study the effects of electron-electron interactions and hole doping on the electronic structure of Cu-doped NaFeAs using the density functional theory plus dynamical mean-field theory (DFT+DMFT) method. In particular, we employ an effective multi-orbital Hubbard model with a realistic bandstructure of NaFeAs in which Cu-doping was modeled within a rigid band approximation and compute the evolution of the spectral properties, orbital-dependent electronic mass renormalizations, and magnetic properties of NaFeAs upon doping with Cu. In addition, we perform fully charge self-consistent DFT+DMFT calculations for the long-range antiferromagnetically ordered Na(Fe,Cu)As with Cu with a real-space ordering of Fe and Cu ions. Our results reveal a crucial importance of strong electron-electron correlations and local potential difference between the Cu and Fe ions for understanding the…
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