Maximum limit of connectivity in rectangular superconducting films with an oblique weak link
F. Colauto, D. Carmo, A. M. H. de Andrade, A. A. M. Oliveira, M., Motta, W. A. Ortiz

TL;DR
This paper develops a magneto-optical method to measure electrical connectivity in rectangular superconducting films with oblique weak links, generalizing previous models and revealing how weak link orientation affects maximum connectivity.
Contribution
It introduces a new measurement approach for oblique weak links in superconductors and generalizes the maximum connectivity formula to include tilted weak links.
Findings
The relationship between weak link transparency and characteristic line angle is unaffected by tilt.
Maximum weak link critical current depends on tilt angle, with an explicit formula.
The method is validated with magneto-optical observations of Nb films.
Abstract
A method for measuring the electrical connectivity between parts of a rectangular superconductor was developed for weak links making an arbitrary angle with the long side of the sample. The method is based on magneto-optical observation of characteristic lines where the critical current makes discontinuous deviations in the flow direction to adapt to the non-uniform condition created by the presence of the weak link. Assuming the Bean critical state model in the full penetration regime for a sample submitted to a perpendicular magnetic field, the complete flow pattern of screening currents is reconstructed, from which the transparency of the weak link, i.e., the ratio between its critical current and that of the pristine sample, , is then related to the angle formed by two characteristic discontinuity lines which, in turn, are intimately associated to…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Superconducting Materials and Applications · Theoretical and Computational Physics
