Get 20M+ Full-Text Papers For Less Than $1.50/day. Start a 14-Day Trial for You or Your Team.

Learn More →

Magnetic-Field-Induced Vortices and Antivortices in a Mesoscopic Ferromagnet/Insulator/Superconductor Strip

Magnetic-Field-Induced Vortices and Antivortices in a Mesoscopic... The time-dependent Ginzburg–Landau equations have been solved numerically by a finite element method for a hybrid system consisting of a finite-size superconducting film with a magnetic strip on top. It is demonstrated that the coexistence of vortices and antivortices could occur in the mesoscopic superconducting film due to the important influence of the magnetic strip, which could help us to understand the experimental results. http://www.deepdyve.com/assets/images/DeepDyve-Logo-lg.png Journal of Low Temperature Physics Springer Journals

Magnetic-Field-Induced Vortices and Antivortices in a Mesoscopic Ferromagnet/Insulator/Superconductor Strip

Loading next page...
 
/lp/springer-journals/magnetic-field-induced-vortices-and-antivortices-in-a-mesoscopic-nsYFzyg0HH

References (30)

Publisher
Springer Journals
Copyright
Copyright © 2019 by Springer Science+Business Media, LLC, part of Springer Nature
Subject
Physics; Condensed Matter Physics; Characterization and Evaluation of Materials; Magnetism, Magnetic Materials
ISSN
0022-2291
eISSN
1573-7357
DOI
10.1007/s10909-019-02227-1
Publisher site
See Article on Publisher Site

Abstract

The time-dependent Ginzburg–Landau equations have been solved numerically by a finite element method for a hybrid system consisting of a finite-size superconducting film with a magnetic strip on top. It is demonstrated that the coexistence of vortices and antivortices could occur in the mesoscopic superconducting film due to the important influence of the magnetic strip, which could help us to understand the experimental results.

Journal

Journal of Low Temperature PhysicsSpringer Journals

Published: Aug 22, 2019

There are no references for this article.