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Atomic-scale interface engineering of Majorana edge modes in a 2D magnet-superconductor hybrid system

机译:二维磁体-超导体混合系统中Majorana边缘模式的原子尺度接口工程

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Topological superconductors are predicted to harbor exotic boundary states—Majorana zero-energy modes—whose non-Abelian braiding statistics present a new paradigm for the realization of topological quantum computing. Using low-temperature scanning tunneling spectroscopy, here, we report on the direct real-space visualization of chiral Majorana edge states in a monolayer topological superconductor, a prototypical magnet-superconductor hybrid system composed of nanoscale Fe islands of monoatomic height on a Re(0001)-O(2 × 1) surface. In particular, we demonstrate that interface engineering by an atomically thin oxide layer is crucial for driving the hybrid system into a topologically nontrivial state as confirmed by theoretical calculations of the topological invariant, the Chern number.
机译:拓扑超导体预计将具有奇异的边界状态(马约拉纳零能量模式),其非阿贝尔编织统计数据为实现拓扑量子计算提供了新的范例。在这里,我们使用低温扫描隧道光谱技术,对单层拓扑超导体中的手性马约拉那边沿状态进行直接的现实空间可视化,该超导体是由Re(0001)上单原子高度的纳米级Fe岛组成的原型磁体-超导体混合系统。 )-O(2×1)表面。尤其是,我们证明了通过原子薄氧化物层进行的界面工程对于将混合系统驱动到拓扑非平凡状态至关重要,这一点已通过拓扑不变性(Chern数)的理论计算得到证实。

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