Publication | Open Access
Dissipative flux motion in high-temperature superconductors
718
Citations
25
References
1990
Year
Superconducting MaterialDissipative Flux MotionEngineeringCritical CurrentsSuperconductivityQuantum MaterialsHigh Tc SuperconductorsThermodynamicsSuperconducting DevicesLow-temperature SuperconductivityMaterials ScienceCuprate High-temperature SuperconductorsHigh-tc SuperconductivityPhysicsCrystalline DefectsFlux CreepSolid-state PhysicHigh Temperature MaterialsHigh-temperature SuperconductivityCondensed Matter PhysicsApplied PhysicsThin Films
The dissipation below ${\mathit{T}}_{\mathit{c}}$ has been studied for representatives of all classes of cuprate high-temperature superconductors, including ${\mathrm{Ba}}_{2}$${\mathrm{YCu}}_{3}$${\mathrm{O}}_{7\mathrm{\ensuremath{-}}\mathrm{\ensuremath{\delta}}}$, and Bi and Tl compounds. The results are parametrized in the framework of flux creep, with the largest activation energies found in ${\mathrm{Ba}}_{2}$${\mathrm{YCu}}_{3}$${\mathrm{O}}_{7}$. It is argued that the magnitude of dissipative flux motion is more related to the electronic anisotropy of the material than the actual defect structure. The thermally activated flux creep model, whose parameters are extracted from dc measurements, consistently describes also dynamic measurements, including the irreversibility line and the melting transition. Finally, the similarities in dissipative behavior are emphasized between high-${\mathit{T}}_{\mathit{c}}$ materials, very thin films, and layered low-${\mathit{T}}_{\mathit{c}}$ superconductors.
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