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Nano-SQUIDs with controllable weak links created via current-induced atom migration

机译:Nano-SQUIDs创建了可控制的薄弱环节通过current-induced原子迁移

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摘要

As the most sensitive magnetic field sensor, the superconducting quantum interference device (SQUID) became an essential component in many applications due to its unmatched performance. Through recently achieved miniaturization, using state-of-the-art fabrication methods, this fascinating device extended its functionality and became an important tool in nanomaterial characterization. Here, we present an accessible and yet powerful technique of targeted atom displacement in order to reduce the size of the weak links of a DC nano-SQUID beyond the limits of conventional lithography. The controllability of our protocol allows us to characterize in situ the full superconducting response after each electromigration step. From this in-depth analysis, we reveal an asymmetric evolution of the weak links at cryogenic temperatures. A comparison with time resolved scanning electron microscopy images of the atom migration process at room temperature confirms the peculiar asymmetric evolution of the parallel constrictions. Moreover, we observe that when electromigration has sufficiently reduced the junction's cross section, superconducting phase coherence is attained in the dissipative state, where magnetic flux readout from voltage becomes possible.
机译:最敏感的磁场传感器,超导量子干涉器件许多(鱿鱼)成为了一个必不可少的组成部分应用程序由于其无与伦比的性能。通过最近实现了小型化,使用先进的制造方法,扩展其功能和迷人的设备在纳米材料成为一个重要工具鉴定。然而,强大的技术的、有针对性的原子位移的大小以减少薄弱环节的直流nano-SQUID超越极限传统的光刻技术。我们的协议允许我们描述原位完整的超导响应后电迁移步骤。分析,我们揭示非对称的进化在低温下的薄弱环节。与时间分辨电子扫描显微镜的图像原子迁移过程在室温下证实了的不对称的平行进化的束缚。电迁移已经足够了结的横截面,超导的阶段连贯性是耗散状态,达到在磁通读出电压变成了可能的。

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