论文标题
NB上Fe单层群岛中磁性和无序shiba带的相关性(110)
Correlation of Magnetism and Disordered Shiba Bands in Fe Monolayer Islands on Nb(110)
论文作者
论文摘要
二维(2D)磁体 - 渗透导体混合动力系统的深入研究,因为它们具有Majorana边缘模式的2D拓扑超导体的潜力。从理论上讲,这种量子状态在旋转轨道耦合的铁磁或skyrmionic 2d旋转局势中无处不在,与S波超导体接近。然而,最近的例子表明,拓扑超导性的要求因磁成分的多轨本质和障碍效应而变得复杂。在这里,我们研究了在S波超导体表面上生长的Fe单层群岛,其在所有元素超导体(NB)中最大的差距,使用自旋分辨扫描隧道谱图,就磁性和超导性而言。我们发现三种类型的Fe单层岛因其重建诱导障碍,磁性和亚间隙电子状态而有所不同。这三种类型均为铁磁,具有不同的强制场,表明各种交换和各向异性能量。在所有三个岛屿上,整个基板的能量缝隙中都有有限的光谱重量,而牺牲了相干峰强度,这表明shiba带的形成与费米能量重叠。对于具有最大强制场的岛屿而言,间隙填充和相干峰值的降低最强。 Shiba带的光谱重量的强烈横向变化表示,在基板配对能量的阶面,其长度为三种不同重建的时期。这些频段内既没有拓扑间隙的迹象,也没有任何形式的边缘模式。我们的工作表明,超导表面上磁性层的重建生长模式对2D拓扑超导性的形成有害。
Two-dimensional (2D) magnet-superconductor hybrid systems are intensively studied due to their potential for the realization of 2D topological superconductors with Majorana edge modes. It is theoretically predicted that this quantum state is ubiquitous in spin-orbit coupled ferromagnetic or skyrmionic 2D spin-lattices in proximity to an s-wave superconductor. However, recent examples suggest that the requirements for topological superconductivity are complicated by the multi-orbital nature of the magnetic components and disorder effects. Here, we investigate Fe monolayer islands grown on a surface of the s-wave superconductor with the largest gap of all elemental superconductors, Nb, with respect to magnetism and superconductivity using spin-resolved scanning tunneling spectrosopy. We find three types of Fe monolayer islands which differ by their reconstruction inducing disorder, the magnetism and the sub-gap electronic states. All three types are ferromagnetic with different coercive fields indicating diverse exchange and anisotropy energies. On all three islands, there is finite spectral weight throughout the substrate's energy gap at the expense of the coherence peak intensity, indicating the formation of Shiba bands overlapping with the Fermi energy. The gap filling and coherence peak reduction is strongest for the island with largest coercive field. A strong lateral variation of the spectral weight of the Shiba bands signifies substantial disorder on the order of the substrate's pairing energy with a length scale of the period of the three different reconstructions. There are neither signs of topological gaps within these bands nor of any kind of edge modes. Our work illustrates that a reconstructed growth mode of magnetic layers on superconducting surfaces is detrimental for the formation of 2D topological superconductivity.