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Fizika Tverdogo Tela, 2021 Volume 63, Issue 10, Pages 1471–1475 (Mi ftt7979)

This article is cited in 1 paper

Superconductivity

Modeling of the critical state of layered superconducting structures with inhomogeneous layers

P. I. Bezotosnyi, K. A. Dmitrieva

P. N. Lebedev Physical Institute of the Russian Academy of Sciences, Moscow, Russia

Abstract: In this paper, an approach to calculating the critical state of layered structures consisting of inhomogeneous superconducting layers is proposed. The method is based on the numerical solution of one-dimensional Ginzburg–Landau equations generalized for an inhomogeneous plate. The method makes it possible to obtain dependences of the critical current on the magnetic field, as well as the current and magnetic field distribution over the layers. The averaged critical current of the layered structures consisting of inhomogeneous layers is compared with the averaged critical current of the layered structures consisting of homogeneous layers. It is found that with a small number of layers and relatively low external magnetic field, the critical current of layered structures consisting of homogeneous layers may exceed that of structures consisting of inhomogeneous layers. On the contrary, with the increase in the number of layers and/or external magnetic field strength, the critical current of layered structures consisting of inhomogeneous layers exceeds the critical current of structures consisting of homogeneous layers. The pinning force in the structures consisting of inhomogeneous layers is higher than in the structures consisting of homogeneous layers.

Keywords: superconducting layered structures, superconducting films, critical current, Ginzburg–Landau theory, inhomogeneity.

Received: 26.05.2021
Revised: 26.05.2021
Accepted: 03.06.2021

DOI: 10.21883/FTT.2021.10.51393.125


 English version:
Physics of the Solid State, 2021, 63:11, 1605–1610

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© Steklov Math. Inst. of RAS, 2024