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Steering of Vortices by Magnetic Field Tilting in Open Superconductor Nanotubes

  • Igor Bogush
  • , Vladimir M. Fomin
  • , Oleksandr V. Dobrovolskiy (Corresponding author)

Publications: Contribution to journalArticlePeer Reviewed

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 (Formula presented.) at an angle (Formula presented.) in the plane perpendicular to the axis of a nanotube carrying an azimuthal transport current. Namely, while at (Formula presented.), vortices move paraxially in opposite directions within each half-tube; an increase in (Formula presented.) displaces the areas with the close-to-maximum normal component (Formula presented.) to the close(opposite)-to-slit regions, giving rise to descending (ascending) branches in the induced-voltage frequency spectrum (Formula presented.). At lower B values, upon reaching the critical angle (Formula presented.), the close-to-slit vortex chains disappear, yielding (Formula presented.) of the (Formula presented.) type ((Formula presented.) : an integer; (Formula presented.) : the vortex nucleation frequency). At higher B values, (Formula presented.) is largely blurry because of multifurcations of vortex trajectories, leading to the coexistence of a vortex jet with two vortex chains at (Formula presented.). 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.
Original languageEnglish
Article number420
Number of pages10
JournalNanomaterials
Volume14
Issue number5
DOIs
Publication statusPublished - 1 Mar 2024

Funding

I.B. is grateful to Victor Ciobu for technical support, including the generous provision of several servers that were instrumental for the calculations. O.V.D. acknowledges the Austrian Science Fund (FWF) for support through Grant No. I 6079 (FluMag). V.M.F. expresses his thanks to the European Cooperation in Science and Technology for support via Grant E-COST-GRANT-CA21144-d8436ac6-b039a83c-fa29-11ed-9946-0a58a9feac02 and to the ZIH TU Dresden for providing its facilities for high throughput calculations. This article is based upon work supported by the E-COST via Action CA21144 (SuperQuMap).

Austrian Fields of Science 2012

  • 103033 Superconductivity
  • 210004 Nanomaterials

Keywords

  • 3D nanostructures
  • microwave frequencies
  • superconductivity
  • vortex dynamics

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