论文标题

从散装到单层FESE的旋转激发的演变

Evolution of spin excitations from bulk to monolayer FeSe

论文作者

Pelliciari, J., Karakuzu, S., Song, Q., Arpaia, R., Nag, A., Rossi, M., Li, J., Yu, T., Chen, X., Peng, R., Garcia-Fernandez, M., Walters, A. C., Wang, Q., Zhao, J., Ghiringhelli, G., Feng, D., Maier, T. A., Zhou, K. -J., Johnston, S., Comin, R.

论文摘要

在SRTIO3(FESE/STO)上生长的FESE膜中增强的超导性(SC)的发现使基于FE的超导体的领域振兴了领域。在超薄限制中,超导过渡温度TC几乎增加了一个数量级,从而提出了有关配对机制的新问题。与其他非常规的超导体一样,已经提出了抗磁性自旋波动作为介导该系统中SC的候选者。因此,必须研究FESE在超薄极限上的自旋动力学的演变,以阐明其与超导性的关系。在这里,我们使用高分辨率的非弹性X射线散射(RIX)和量子Monte Carlo(QMC)计算,研究并比较了在Sto上生长的散装和单层FESE中的自旋激发。尽管没有远程磁性,但大量FESE仍会显示出对其他Fe-Pnictides的色散磁激发。相反,FESE/STO中的自旋激发与散装对应物相比,散布,分散并明显硬化。通过将我们的RIXS结果与Biyer Hubbard模型的模拟进行比较,我们将旋转激发的演变与两个系统的费米学连接起来。本研究揭示了FESE/Sto中自旋激发的显着重新配置,这对于了解自旋波动在配对机制中的作用至关重要。

The discovery of enhanced superconductivity (SC) in FeSe films grown on SrTiO3 (FeSe/STO) has revitalized the field of Fe-based superconductors. In the ultrathin limit, the superconducting transition temperature Tc is increased by almost an order of magnitude, raising new questions on the pairing mechanism. As in other unconventional superconductors, antiferromagnetic spin fluctuations have been proposed as a candidate to mediate SC in this system. Thus, it is essential to study the evolution of the spin dynamics of FeSe in the ultrathin limit to elucidate their relationship with superconductivity. Here, we investigate and compare the spin excitations in bulk and monolayer FeSe grown on STO using high-resolution resonant inelastic x-ray scattering (RIXS) and quantum Monte Carlo (QMC) calculations. Despite the absence of long-range magnetic order, bulk FeSe displays dispersive magnetic excitations reminiscent of other Fe-pnictides. Conversely, the spin excitations in FeSe/STO are gapped, dispersionless, and significantly hardened relative to the bulk counterpart. By comparing our RIXS results with simulations of a bilayer Hubbard model, we connect the evolution of the spin excitations to the Fermiology of the two systems. The present study reveals a remarkable reconfiguration of spin excitations in FeSe/STO, which is essential to understand the role of spin fluctuations in the pairing mechanism.

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