论文标题

部分可观测时空混沌系统的无模型预测

Planar Josephson Junctions Templated by Nanowire Shadowing

论文作者

Zhang, P., Zarassi, A., Pendharkar, M., Lee, J. S., Jarjat, L., Van de Sande, V., Zhang, B., Mudi, S., Wu, H., Tan, S., Dempsey, C. P., McFadden, A. P., Harrington, S. D., Shojaei, B., Dong, J. T., Chen, A. -H., Hocevar, M., Palmstrøm, C. J., Frolov, S. M.

论文摘要

越来越多的材料内置在电子设备中。这是由于设备性能的提高和材料本身的研究而动机。一种重要的装置类型是基于量子材料与超导体之间的接近效应的约瑟夫森连接,可用于基础研究以及量子和其他技术。当两个连接触点都放置在同一表面上(例如二维材料)时,连接称为``平面''。一个重要的挑战是,并非所有材料都适合标准的平面交界处的制造。设备质量,而不是内在特征,可能是在这里定义的。在这里,我们在nanowires中引入了一项台词,并将其置于nanowires上。最小的维度是由纳米线直径确定的,并且不需要光刻,并且连接不暴露于化学物质(例如蚀刻),我们使用两个超导体(Al and SN)(AL和SN)(sn)和两个半导体纳米纳米级 - INAS和INS BIDERTICTS展示了这一方法。纳米线可以作为一个自我对准的静电门,我们可以使用两个栅极可调的连接来创建鱿鱼。

More and more materials, with a growing variety of properties, are built into electronic devices. This is motivated both by increased device performance and by the studies of materials themselves. An important type of device is a Josephson junction based on the proximity effect between a quantum material and a superconductor, useful for fundamental research as well as for quantum and other technologies. When both junction contacts are placed on the same surface, such as a two-dimensional material, the junction is called ``planar". One outstanding challenge is that not all materials are amenable to the standard planar junction fabrication. The device quality, rather than the intrinsic characteristics, may be defining the results. Here, we introduce a technique in which nanowires are placed on the surface and act as a shadow mask for the superconductor. The advantages are that the smallest dimension is determined by the nanowire diameter and does not require lithography, and that the junction is not exposed to chemicals such as etchants. We demonstrate this method with an InAs quantum well, using two superconductors - Al and Sn, and two semiconductor nanowires - InAs and InSb. The junctions exhibit critical current levels consistent with transparent interfaces and uniform width. We show that the template nanowire can be operated as a self-aligned electrostatic gate. Beyond single junctions, we create SQUIDs with two gate-tunable junctions. We suggest that our method can be used for a large variety of quantum materials including van der Waals layers, topological insulators, Weyl semimetals and future materials for which proximity effect devices is a promising research avenue.

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