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Engineering the spin couplings in atomically crafted spin chains on an elemental superconductor

机译:在元素超导体上以原子方式制作的自旋链中的自旋耦合工程

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摘要

Magnetic atoms on a superconductor give rise to Yu-Shiba-Rusinov (YSR) states within the superconducting energy gap. A spin chain of magnetic adatoms on an s-wave superconductor may lead to topological superconductivity accompanied by the emergence of Majorana modes at the chain ends. For their usage in quantum computation, it is a prerequisite to artificially assemble the chains and control the exchange couplings between the spins in the chain and in the substrate. Here, using a scanning tunneling microscope tip, we demonstrate engineering of the energy levels of the YSR states by placing interstitial Fe atoms in close proximity to adsorbed Fe atoms on an oxidized Ta surface. Based on this prototype platform, we show that the interaction within a long chain can be strengthened by linking the adsorbed Fe atoms with the interstitial ones. Our work adds an important step towards the controlled design and manipulation of Majorana end states.
机译:超导体上的磁性原子在超导能隙内产生Yu-Shiba-Rusinov(YSR)状态。 s波超导体上的磁性原子原子的自旋链可能会导致拓扑超导,并伴随着链末端的马约拉那模态的出现。对于它们在量子计算中的使用,必须人工组装链并控制链中和基板中自旋之间的交换耦合。在这里,我们使用扫描隧道显微镜的尖端,通过将间隙铁原子紧密放置在氧化Ta表面上吸附的铁原子上,论证了YSR态能级的工程设计。在此原型平台的基础上,我们表明,通过将吸附的铁原子与间隙原子相连,可以增强长链内的相互作用。我们的工作为朝着Majorana终端状态的受控设计和操纵迈出了重要一步。

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