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电流驱动介观横向S/S'/S超导弱连接中从阿布里科索夫-约瑟夫森涡旋到类约瑟夫森涡旋的转变。

Current driven transition from Abrikosov-Josephson to Josephson-like vortex in mesoscopic lateral S/S'/S superconducting weak links.

作者信息

Carapella G, Sabatino P, Barone C, Pagano S, Gombos M

机构信息

Dipartimento di Fisica E.R. Caianiello and CNR-SPIN UOS Salerno, Università di Salerno, I-84084 Fisciano, Salerno, Italy.

CNR-IMM UOS Napoli, Italy.

出版信息

Sci Rep. 2016 Oct 18;6:35694. doi: 10.1038/srep35694.

Abstract

Vortices are topological defects accounting for many important effects in superconductivity, superfluidity, and magnetism. Here we address the stability of a small number of such excitations driven by strong external forces. We focus on Abrikosov-Josephson vortex that appears in lateral superconducting S/S'/S weak links with suppressed superconductivity in S'. In such a system the vortex is nucleated and confined in the narrow S' region by means of a small magnetic field and moves under the effect of a force proportional to an applied electrical current with a velocity proportional to the measured voltage. Our numerical simulations show that when a slow moving Abrikosov-Josephson vortex is driven by a strong constant current it becomes unstable with respect to a faster moving excitation: the Josephon-like vortex. Such a current-driven transition explains the structured dissipative branches that we observe in the voltage-current curve of the weak link. When vortex matter is strongly confined phenomena as magnetoresistance oscillations and reentrance of superconductivity can possibly occur. We experimentally observe these phenomena in our weak links.

摘要

涡旋是拓扑缺陷,在超导、超流和磁性中导致许多重要效应。在此,我们探讨由强外力驱动的少量此类激发的稳定性。我们关注出现在具有超导性被抑制的S'的横向超导S/S'/S弱连接中的阿布里科索夫 - 约瑟夫森涡旋。在这样的系统中,涡旋通过小磁场成核并限制在狭窄的S'区域,并且在与施加电流成正比的力的作用下移动,其速度与测量电压成正比。我们的数值模拟表明,当缓慢移动的阿布里科索夫 - 约瑟夫森涡旋由强恒定电流驱动时,它相对于更快移动的激发——类约瑟夫森涡旋变得不稳定。这种电流驱动的转变解释了我们在弱连接的电压 - 电流曲线中观察到的结构化耗散分支。当涡旋物质被强烈限制时,可能会出现诸如磁阻振荡和超导性再入等现象。我们在我们的弱连接中通过实验观察到了这些现象。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4926/5067708/fa689a3d6ea1/srep35694-f1.jpg

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