Electronic structure and spin dynamics of ACo2As2 (A=Ba, Sr, Ca)
Huican Mao, Zhiping Yin

TL;DR
This study uses advanced computational methods to explore the electronic and magnetic properties of ACo2As2 compounds, revealing how orbital correlations and structural factors influence their magnetic behavior.
Contribution
It provides new insights into the electronic correlations and spin dynamics of cobalt pnictides, highlighting differences from iron-based counterparts and explaining their magnetic orders.
Findings
CaCo2As2 exhibits strong electronic correlations and A-type antiferromagnetism.
BaCo2As2 and SrCo2As2 remain paramagnetic with weaker correlations.
Proximity to Van Hove singularity influences ferromagnetic spin excitations.
Abstract
The electronic structures, charge and spin dynamics of the cobalt pnictide compounds ACo2As2 (A=Ba, Sr, Ca) in the paramagnetic state are investigated by using density functional theory combined with dynamical mean-field theory. In contrast to their iron counterparts, these cobalt pnictide compounds have three-dimensional electronic structures and strong ferromagnetic low-energy spin excitations. The Co 3d eg orbitals dominate the electronic states around the Fermi level and have stronger electronic correlation strength than the Co 3d t2g orbitals. The overall electronic correlation strength is much weaker than that in the iron arsenides, however, the most strongly correlated Co 3d x2-y2 orbital, especially in CaCo2As2, has electronic correlation strength comparable to Fe 3d t2g orbitals in iron arsenides. ACo2As2 (A=Ba, Sr, Ca) shows similar electronic structures where a conduction…
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