Local flux-flow instability in superconducting films near Tc
arXiv:1905.03564 · doi:10.1103/PhysRevB.99.174518
Abstract
Larkin and Ovchinnikov established that the viscous flow of magnetic flux quanta in current-biased superconductor films placed in a perpendicular magnetic field can lose stability due to a decrease in the vortex viscosity coefficient with increasing velocity of the vortices . The dependence of on leads to a section in the current-voltage (-) curve which ends at the flux-flow instability point with a voltage jump to a highly resistive state. At the same time, in contradistinction with the nonlinear conductivity regime, instability jumps often occur in - sections. Here, for the elucidation of such jumps we develop a theory of local instability of the magnetic flux flow occurring not in the entire film but in a narrow strip across the film width in which vortices move much faster than outside it. The predictions of the developed theory are in agreement with experiments on Nb films for which the heat removal coefficients and the inelastic scattering times of quasiparticles are deduced. The presented model of local instability is also relevant for the characterization of superconducting thin films whose performance is examined for fast single-photon detection.
9 pages, 4 figures
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Cited by in corpus (4)
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- Effect of random pinning on nonlinear dynamics and dissipation of a vortex driven by a strong microwave current
- Vortex Dynamics in Amorphous MoSi Superconducting Thin Films
- Nanocrystalline superconducting -MoN ultra-thin films for single-photon detectors