paper

Evolution of the pseudogap temperature dependence in YBaCuO films under the influence of a magnetic field

arXiv:2401.01413

Abstract

The evolution of the temperature dependence of pseudogap *(T) in optimally doped (OD) YBaCuO (YBCO) films with = 88.7 K under the influence of a magnetic field up to 8 T has been studied in detail. It has been established that the shape of *(T) for various over the entire range from the pseudogap opening temperature * to , below which superconducting fluctuations occur, has a wide maximum at the BEC-BCS crossover temperature , which is typical for OD films and untwinned YBCO single crystals. * was shown to be independent on , whereas shifts to the low temperature region along with increase of , while the maximum value of *() remains practically constant regardless of . It was revealed that as the field increases, the low-temperature maximum near the 3D-2D transition temperature is blurred and disappears at > 5 T. Moreover, above the Ginzburg temperature , which limits superconducting fluctuations from below, at > 0.5 T, a minimum appears on *(T) at , which becomes very pronounced with a further increase in the field. As a result, the overall value of *(T) decreases noticeably most likely due to pair-breaking affect of a magnetic field. A comparison of *(T) near with the Peters-Bauer theory shows that the density of fluctuating Cooper pairs actually decreases from <<nn>> 0.31 at = 0 to <<nn>> 0.28 in the field 8 T. The observed behavior of *(T) around is assumed to be due to the influence of a two-dimensional vortex lattice created by the magnetic field, which prevents the formation of fluctuating Cooper pairs near .

13 pages, 7 figures