论文标题
部分可观测时空混沌系统的无模型预测
Diamagnetic mechanism of critical current non-reciprocity in multilayered superconductors
论文作者
论文摘要
观察非临界临界电流(NRC)的最新兴奋是由“超导二极管效应”可能是具有强旋转旋转相互作用的非中心对称超导体的固有特性[1]。从理论上讲,据理解,库珀对的动量术语是由Rashba旋转轨道和Zeeman互动引起的,或者更一般而言,在统一的单线超导体中,任何对称性允许的Lifshitz不变性[2]都不会导致超级流动,尽管高级术语的作用并没有促成高级术语的作用,但仍不清楚[3,4]。在这项工作中,我们表明,在存在磁场生成的透明电流的情况下,临界电流非循环性是多层超导体结构的通用特性。在层之间的中间耦合的状态下,预计约瑟夫森涡流将在高场和电流处形成。我们报告了由INAS/AL异质结构制造的纳米线中NRC的观察。该效果与电线的晶体学方向无关,排除了NRC的内在起源。具有磁场的非单调性NRC演化与Dimagnetic电流的产生和约瑟夫森涡流的形成一致。这种外部NRC机制可用于设计用于超导电路的新型设备。
Recent excitement in observation of non-reciprocal critical current (NRC) is motivated by a suggestion that "superconducting diode effect" may be an intrinsic property of non-centrosymmetric superconductors with strong spin-orbit interactions[1]. Theoretically it has been understood that linear in the Cooper pair momentum terms, caused by the Rashba spin-orbit and Zeeman interactions or, more generally, any symmetry-allowed Lifshitz invariants[2] in uniform singlet superconductors, do not contribute to the supercurrent, although the role of higher-order terms remains unclear[3, 4]. In this work we show that critical current non-reciprocity is a generic property of multilayered superconductor structures in the presence of magnetic field-generated diamagnetic currents. In the regime of an intermediate coupling between the layers, the Josephson vortices are predicted to form at high fields and currents. We report the observation of NRC in nanowires fabricated from InAs/Al heterostructures. The effect is independent of the crystallographic orientation of the wire, ruling out an intrinsic origin of NRC. Non-monotonic NRC evolution with magnetic field is consistent with the generation of diamagnetic currents and formation of the Josephson vortices. This extrinsic NRC mechanism can be used to design novel devices for superconducting circuits.