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反馈驱动的原子尺度约瑟夫森显微镜。

The feedback driven atomic scale Josephson microscope.

作者信息

D Escribano Samuel, Barrena Víctor, Perconte David, Moreno Jose Antonio, Fernández Lomana Marta, Águeda Miguel, Herrera Edwin, Wu Beilun, Rodrigo Jose Gabriel, Prada Elsa, Guillamón Isabel, Levy Yeyati Alfredo, Suderow Hermann

机构信息

Departamento de Física Teórica de la Materia Condensada, Instituto Nicolás Cabrera and Condensed Matter Physics Center (IFIMAC), Universidad Autónoma de Madrid, E-28049, Madrid, Spain.

Department of Condensed Matter Physics, Weizmann Institute of Science, Rehovot, 7610, Israel.

出版信息

Nat Commun. 2025 Jul 1;16(1):5843. doi: 10.1038/s41467-025-60569-9.

Abstract

The ultimate spatial limit to establish a Josephson coupling between two superconducting electrodes is an atomic-scale junction. The Josephson effect in such ultrasmall junctions has been used to unveil new switching dynamics, study coupling close to superconducting bound states or reveal non-reciprocal effects. However, the Josephson coupling is weak and the sensitivity to temperature reduces the Cooper pair current magnitude. Here we show that a feedback element induces a time-dependent bistable regime which consists of spontaneous periodic oscillations between two different Cooper pair tunneling states (corresponding to the DC and AC Josephson regimes respectively). The amplitude of the time-averaged current within the bistable regime is almost independent of temperature. By tracing the periodic oscillations in the new bistable regime as a function of the position in a Scanning Tunneling Microscope, we obtain atomic scale maps of the critical current in 2H-NbSe and find spatial modulations due to a pair density wave. Our results fundamentally improve our understanding of atomic size Josephson junctions including a feedback element in the circuit and provide a promising new route to study superconducting materials through atomic scale maps of the Josephson coupling.

摘要

在两个超导电极之间建立约瑟夫森耦合的最终空间极限是原子尺度的结。这种超小结中的约瑟夫森效应已被用于揭示新的开关动力学、研究接近超导束缚态的耦合或揭示非互易效应。然而,约瑟夫森耦合较弱,且对温度的敏感性降低了库珀对电流的大小。在此,我们表明反馈元件会诱导出一种时间相关的双稳状态,该状态由两种不同的库珀对隧穿状态(分别对应于直流和交流约瑟夫森状态)之间的自发周期性振荡组成。双稳状态下时间平均电流的幅度几乎与温度无关。通过在扫描隧道显微镜中追踪新双稳状态下作为位置函数的周期性振荡,我们获得了2H-NbSe中临界电流的原子尺度图谱,并发现了由配对密度波引起的空间调制。我们的结果从根本上增进了我们对包含电路中反馈元件的原子尺度约瑟夫森结的理解,并为通过约瑟夫森耦合的原子尺度图谱研究超导材料提供了一条有前景的新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/66f3/12218007/63ae55eba344/41467_2025_60569_Fig1_HTML.jpg

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