Department of Physics, University of Hamburg, D-20355, Hamburg, Germany.
Institute of Physics, Poznan University of Technology, Piotrowo 3, 60-965, Poznan, Poland.
Nat Commun. 2023 Feb 4;14(1):614. doi: 10.1038/s41467-023-36201-z.
Magnet/superconductor hybrids (MSHs) hold the promise to host emergent topological superconducting phases. Both one-dimensional (1D) and two-dimensional (2D) magnetic systems in proximity to s-wave superconductors have shown evidence of gapped topological superconductivity with zero-energy end states and chiral edge modes. Recently, it was proposed that the bulk transition-metal dichalcogenide 4Hb-TaS is a gapless topological nodal-point superconductor (TNPSC). However, there has been no experimental realization of a TNPSC in a MSH system yet. Here we present the discovery of TNPSC in antiferromagnetic (AFM) monolayers on top of an s-wave superconductor. Our calculations show that the topological phase is driven by the AFM order, resulting in the emergence of a gapless time-reversal invariant topological superconducting state. Using low-temperature scanning tunneling microscopy we observe a low-energy edge mode, which separates the topological phase from the trivial one, at the boundaries of antiferromagnetic islands. As predicted by the calculations, we find that the relative spectral weight of the edge mode depends on the edge's atomic configuration. Our results establish the combination of antiferromagnetism and superconductivity as a novel route to design 2D topological quantum phases.
磁/超导体混合体系(MSHs)有望承载新兴的拓扑超导相。与 s 波超导体接近的一维(1D)和二维(2D)磁体系统都表现出具有零能端态和手性边缘模式的带隙拓扑超导性的证据。最近,有人提出,体相过渡金属二卤代物 4Hb-TaS 是一种无带隙的拓扑节线超导体(TNPSC)。然而,目前在 MSH 系统中还没有实验实现 TNPSC。在这里,我们在 s 波超导体上的反铁磁(AFM)单层中发现了 TNPSC。我们的计算表明,拓扑相是由 AFM 序驱动的,导致出现无带隙的时间反演不变拓扑超导态。我们利用低温扫描隧道显微镜观察到在反铁磁岛的边界处存在一种低能边缘模式,它将拓扑相与平凡相分隔开来。正如计算所预测的,我们发现边缘模式的相对谱权重取决于边缘的原子构型。我们的结果确立了反铁磁和超导的组合是设计 2D 拓扑量子相的新途径。