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    Theory of frozen flux in a narrow uniform superconducting strip after cooling in a small magnetic field

    Alexei E. Koshelev

    Phys. Rev. B 114, 154509 – Published 17 September, 2026

    DOI: https://doi.org/10.1103/1q25-j41l

    Abstract

    We analyze residual frozen flux in a long narrow superconducting strip cooled through its transition temperature Tc in a small perpendicular magnetic field. This problem is relevant for the issue of trapped magnetic flux in superconducting electronic devices. During cooling, the low-temperature vortex configuration is formed at temperatures very close to Tc, where the flux density is determined by dynamic balance between the thermally activated exits and entries of vortices over the geometrical energy barrier formed by the interaction with the strip edges and the Meissner screening current. In the field range between the minimum flux-expulsion field and the penetration field, the equilibrium flux density is finite due to thermal activation and rapidly decreases with decreasing temperature. During cooling, however, the escape rate decreases exponentially, and the vortex density falls out of equilibrium at a field-dependent freezing temperature Tfr. We derive and solve the dynamic-balance equation for this process, which yields definite quantitative results for Tfr and the frozen vortex density. The relative freezing temperature 1−Tfr/Tc exceeds the fluctuation width of the transition by a large logarithmic factor, rapidly increases when the magnetic field approaches the minimum flux-expulsion field, and logarithmically increases with decreasing cooling rate. The resulting frozen flux density has a very strong magnetic-field dependence, which can be used to define the effective flux-expulsion magnetic field.

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