论文标题

无弹性中子散射所探索的平面金属抗铁磁铁Fe $ _2 $中的二维交换相互作用

Strongly two-dimensional exchange interactions in the in-plane metallic antiferromagnet Fe$_2$As probed by inelastic neutron scattering

论文作者

Karigerasi, Manohar H., Kang, Kisung, Granroth, Garrett E., Banerjee, Arnab, Schleife, André, Shoemaker, Daniel P.

论文摘要

为了了解Cu $ _2 $ SB结构类型的材料中的自旋相互作用,由于在不同的温度和入射中子能量的情况下检查了Fe $ _2 $的非弹性中子散射。实验声子光谱与从密度函数理论(DFT)计算获得的模拟声子光谱良好匹配。将测得的木谱与通过线性自旋波理论获得的模拟镁光谱进行了比较,并使用Zhang等人的旋转极化,相对论Korringa-kohn-Rostoker方法计算的交换耦合常数。 (2013)。模拟的木元光谱与实验数据广泛一致,尽管沿$ k $方向低估了能量值。 Fe原子之间的交换耦合常数通过拟合到实验镁光谱中进行了完善,发现最近的邻居FE1-FE1交换偶联比以前报道的要强。尽管声子相互作用的三维性质,这种交换耦合的强度几乎比其他交换相互作用高几乎高。在60 MEV以上的能量处缺乏散射强度,因此难以确定整个交换相互作用的确定,这可能是金属抗fiferromagnets的基本挑战。

To understand spin interactions in materials of the Cu$_2$Sb structure type, inelastic neutron scattering of Fe$_2$As single crystals was examined at different temperatures and incident neutron energies. The experimental phonon spectra match well with the simulated phonon spectra obtained from density functional theory (DFT) calculations. The measured magnon spectra were compared to the simulated magnon spectra obtained via linear spin wave theory with the exchange coupling constants calculated using the spin polarized, relativistic Korringa-Kohn-Rostoker method in Zhang et al. (2013). The simulated magnon spectra broadly agree with the experimental data although, the energy values are underestimated along the $K$ direction. Exchange coupling constants between Fe atoms were refined by fits to the experimental magnon spectra, revealing stronger nearest neighbor Fe1-Fe1 exchange coupling than previously reported. The strength of this exchange coupling is almost an order of magnitude higher than other exchange interactions despite the three-dimensional nature of the phonon interactions. The lack of scattering intensity at energies above 60 meV makes unconstrained determination of the full set of exchange interactions difficult, which may be a fundamental challenge in metallic antiferromagnets.

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