与不相似的马约拉纳纳米线相连的平行耦合双量子点中的约瑟夫森二极管效应

Nanomaterials Pub Date : 2024-07-25 DOI:10.3390/nano14151251
Yumei Gao, Hu Xiao, Mou-Hua Jiang, Feng Chi, Zilong Yi, Liming Liu
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引用次数: 0

摘要

我们从理论上研究了由平行耦合双量子点(DQDs)组成的系统中实现的约瑟夫森二极管效应(JDE),该系统夹在沉积在s波超导体表面的两根半导体纳米线之间。由于近距离诱导超导、强拉什巴自旋轨道相互作用和纳米线内部的泽曼分裂的共同作用,一对马约拉纳束缚态(MBS)可能会出现在每根纳米线的两端。由于超导体衬底的不同,左右纳米线上制备的 DQD 与 MBS 之间的耦合振幅也会不同,从而产生约瑟夫森电流。我们发现,相对于穿透系统的磁通量,正反方向的临界约瑟夫森电流在一个振荡周期内的振幅互不相同,这种现象被称为 "JDE"。这种现象源于双通道器件中的量子干涉效应,而在一个 QD 与 MBS 耦合的系统中几乎不可能出现这种现象。我们的研究结果还表明,二极管的效率可达 50%,但这取决于 MBS 之间的重叠幅度,以及可通过栅极电压调节的 DQD 的能级。本模型可在当前的纳米制造技术条件下实现,并可在马约拉纳和约瑟夫森物理学的跨学科领域得到实际应用。
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Josephson Diode Effect in Parallel-Coupled Double-Quantum Dots Connected to Unalike Majorana Nanowires
We study theoretically the Josephson diode effect (JDE) when realized in a system composed of parallel-coupled double-quantum dots (DQDs) sandwiched between two semiconductor nanowires deposited on an s-wave superconductor surface. Due to the combined effects of proximity-induced superconductivity, strong Rashba spin–orbit interaction, and the Zeeman splitting inside the nanowires, a pair of Majorana bound states (MBSs) may possibly emerge at opposite ends of each nanowire. Different phase factors arising from the superconductor substrate can be generated in the coupling amplitudes between the DQDs and MBSs prepared at the left and right nanowires, and this will result in the Josephson current. We find that the critical Josephson currents in positive and negative directions are different from each other in amplitude within an oscillation period with respect to the magnetic flux penetrating through the system, a phenomenon known as the JDE. It arises from the quantum interference effect in this double-path device, and it can hardly occur in the system of one QD coupled to MBSs. Our results also show that the diode efficiency can reach up to 50%, but this depends on the overlap amplitude between the MBSs, as well as the energy levels of the DQDs adjustable by gate voltages. The present model is realizable within current nanofabrication technologies and may find practical use in the interdisciplinary field of Majorana and Josephson physics.
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