AFe2As2 (A = Ca, Sr, Ba, Eu) and SrFe_(2-x)TM_(x)As2 (TM = Mn, Co, Ni): crystal structure, charge doping, magnetism and superconductivity
Deepa Kasinathan, Alim Ormeci, Katrin Koch, Ulrich Burkhardt, Walter, Schnelle, Andreas Leithe-Jasper, Helge Rosner

TL;DR
This study investigates the relationship between crystal structure, doping, and magnetism in $A$Fe$_{2}$As$_{2}$ compounds, combining first-principles calculations with experimental substitution to understand their electronic and magnetic properties related to superconductivity.
Contribution
It provides a detailed analysis of how structural distortions, doping, and pressure influence magnetism and electronic structure in $A$Fe$_{2}$As$_{2}$ systems, integrating theoretical and experimental approaches.
Findings
Mn substitution does not suppress antiferromagnetism or induce superconductivity.
Calculated properties largely agree with experimental data, sensitive to As z position.
Structural features related to Fe-As interplay are crucial for understanding superconductivity.
Abstract
The electronic structure and physical properties of the pnictide compound families OFeAs ( = La, Ce, Pr, Nd, Sm), FeAs ( = Ca, Sr, Ba, Eu), LiFeAs and FeSe are quite similar. Here, we focus on the members of the FeAs family whose sample composition, quality and single crystal growth are better controllable compared to the other systems. Using first principles band structure calculations we focus on understanding the relationship between the crystal structure, charge doping and magnetism in FeAs systems. We will elaborate on the tetragonal to orthorhombic structural distortion along with the associated magnetic order and anisotropy, influence of doping on the site as well as on the Fe site, and the changes in the electronic structure as a function of pressure. Experimentally, we investigate the substitution of Fe in…
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