Quantum Monte Carlo description of correlated electrons in two-dimensional FeSe
S. Azadi, A. Principi, R. V. Belosludov, T. D. K\"uhne, and M.S. Bahramy

TL;DR
This study uses quantum Monte Carlo methods to analyze how correlation energy in double-layer FeSe evolves with strain and separation, revealing atomic contributions dominate the correlation energy.
Contribution
It applies advanced QMC techniques to double-layer FeSe, providing new insights into the atomic versus bonding contributions to correlation energy.
Findings
Correlation energy is mainly determined by atomic contributions.
Correlation energy approaches atomic values with increased strain and separation.
Interlayer bonding plays a minor role in correlation energy.
Abstract
An interesting question in physics is how the correlation energy of atoms evolves upon forming a solid. Here, we address this problem for a specific case of double-layer FeSe. We used many-body wavefunction-based quantum Monte Carlo (QMC) techniques to compute the correlation energies of double-layer FeSe with different geometrical configurations and compared them with those of isolated Fe and Se atoms. Variational and diffusion QMC calculations were carried out with Slater Jastrow trial wavefunctions employing two alternative forms for the homogeneous two-body pair correlation term. The ground-state energy was obtained in the thermodynamic limit using two types of trial wave functions of JDFT, in which only the Jastrow factor is optimized while the Slater determinant is derived from the local density approximation, and JSD, where both the Jastrow factor and the Slater determinant are…
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Taxonomy
TopicsIron-based superconductors research · Rare-earth and actinide compounds · Heusler alloys: electronic and magnetic properties
