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开放型超导纳米管中磁场倾斜对涡旋的操控

Steering of Vortices by Magnetic Field Tilting in Open Superconductor Nanotubes.

作者信息

Bogush Igor, Fomin Vladimir M, Dobrovolskiy Oleksandr V

机构信息

Leibniz IFW Dresden, Institute for Emerging Electronic Technologies, Helmholtzstraße 20, 01069 Dresden, Germany.

Moldova State University, Faculty of Physics and Engineering, Str. A. Mateevici 60, 2009 Chişinău, Moldova.

出版信息

Nanomaterials (Basel). 2024 Feb 25;14(5):420. doi: 10.3390/nano14050420.

Abstract

In planar superconductor thin films, the places of nucleation and arrangements of moving vortices are determined by structural defects. However, various applications of superconductors require reconfigurable steering of fluxons, which is hard to realize with geometrically predefined vortex pinning landscapes. Here, on the basis of the time-dependent Ginzburg-Landau equation, we present an approach for the steering of vortex chains and vortex jets in superconductor nanotubes containing a slit. The idea is based on the tilting of the magnetic field B at an angle α in the plane perpendicular to the axis of a nanotube carrying an azimuthal transport current. Namely, while at α=0∘, vortices move paraxially in opposite directions within each half-tube; an increase in α displaces the areas with the close-to-maximum normal component |Bn| to the close(opposite)-to-slit regions, giving rise to descending (ascending) branches in the induced-voltage frequency spectrum fU(α). At lower values, upon reaching the critical angle αc, the close-to-slit vortex chains disappear, yielding fU of the nf1 type (n≥1: an integer; f1: the vortex nucleation frequency). At higher values, fU is largely blurry because of multifurcations of vortex trajectories, leading to the coexistence of a vortex jet with two vortex chains at α=90∘. In addition to prospects for the tuning of GHz-frequency spectra and the steering of vortices as information bits, our findings lay the foundation for on-demand tuning of vortex arrangements in 3D superconductor membranes in tilted magnetic fields.

摘要

在平面超导薄膜中,移动涡旋的成核位置和排列由结构缺陷决定。然而,超导体的各种应用需要对磁通子进行可重构控制,而在几何形状预先确定的涡旋钉扎格局下这很难实现。在此,基于含时金兹堡 - 朗道方程,我们提出一种在含有狭缝的超导纳米管中控制涡旋链和涡旋射流的方法。该方法基于在垂直于携带方位传输电流的纳米管轴的平面内,将磁场B倾斜角度α。也就是说,当α = 0°时,涡旋在每个半管内沿近轴方向反向移动;α增大时,具有接近最大法向分量|Bn|的区域会移动到靠近(相对)狭缝的区域,从而在感应电压频谱fU(α)中产生下降(上升)分支。在较低值时,当达到临界角αc时,靠近狭缝的涡旋链消失,产生nf1型(n≥1:整数;f1:涡旋成核频率)的fU。在较高值时,由于涡旋轨迹的多次分叉,fU很大程度上变得模糊,导致在α = 90°时涡旋射流与两条涡旋链共存。除了在GHz频率频谱调谐和将涡旋作为信息比特进行控制方面的前景外,我们的发现为在倾斜磁场中对三维超导膜中的涡旋排列进行按需调谐奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c3f/10935186/e448ea299491/nanomaterials-14-00420-g001.jpg

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