Magnetic Properties and Electronic Configurations of Mn Ions in the Diluted Magnetic Semiconductor Ba$_{1-x}$K$_{x}$(Zn$_{1-y}$Mn$_{y}$)$_{2}$As$_{2}$ Studied by X-ray Magnetic Circular Dichroism and Resonant Inelastic X-ray Scattering
H. Suzuki, G. Q. Zhao, J. Okamoto, S. Sakamoto, Z.-Y. Chen, Y. Nonaka,, G. Shibata, K. Zhao, B. J. Chen, W.-B. Wu, F.-H. Chang, H.-J. Lin, C.-T., Chen, A. Tanaka, M. Kobayashi, Bo Gu, S. Maekawa, Y. J. Uemura, C. Q. Jin, D., J. Huang, and A. Fujimori

TL;DR
This study investigates the magnetic properties and electronic configurations of Mn ions in a new diluted magnetic semiconductor using advanced X-ray techniques, revealing high-spin states and mixed electronic configurations that influence magnetic interactions.
Contribution
The paper provides detailed experimental analysis of Mn electronic states in Ba$_{1-x}$K$_{x}$(Zn$_{1-y}$Mn$_{y}$)$_{2}$As$_{2}$, highlighting the coexistence of different Mn charge states and their impact on magnetic behavior.
Findings
Mn ions are in high-spin $d^{5}$ configuration.
Net spin moment of 0.45 μ_B per Mn observed.
Presence of both charge-transferred and pure $3d^{5}$ configurations.
Abstract
The magnetic properties and the electronic excitations of the new diluted magnetic semiconductor BaK(ZnMn)As have been studied by x-ray magnetic circular dichroism (XMCD) and resonant inelastic x-ray scattering (RIXS) at the Mn edge. The sum rule analysis of the XMCD spectra yields the net spin moment of /Mn and the small orbital moment of /Mn. This indicates that the Mn atoms are in the high-spin configurations of , whereas the presence of competing ferromagnetic and antiferromagnetic interactions between the Mn ions reduces the net spin moment. RIXS spectra show broad peaks from 1 to 6 eV energy loss, which originate from the - crystal field excitations of the Mn ions. Based on a comparison of the RIXS line shapes with those of GaMnAs, we conclude that the ground state…
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