Dynamics of vortex penetration, jumpwise instabilities and nonlinear surface resistance of type-II superconductors in strong rf fields
A. Gurevich, G. Ciovati

TL;DR
This paper investigates the nonlinear dynamics of vortices in type-II superconductors under strong rf fields, revealing jumpwise vortex penetration, instabilities, and effects on surface resistance, with models incorporating thermal feedback and pinning.
Contribution
It introduces a thermal feedback model of vortex viscosity, explaining jumpwise vortex penetration and hysteretic surface resistance behavior in superconductors under rf fields.
Findings
Vortex penetration involves antivortex annihilation.
Nonlinear vortex viscosity can cause LO-type instabilities.
Trapped flux affects residual surface resistance.
Abstract
We consider nonlinear dynamics of a single vortex in a superconductor in a strong rf magnetic field . Using the London theory, we calculate the dissipated power , and the transient time scales of vortex motion for the linear Bardeen-Stephen viscous drag force, which results in unphysically high vortex velocities during vortex penetration through the oscillating surface barrier. It is shown that penetration of a single vortex through the ac surface barrier always involves penetration of an antivortex and the subsequent annihilation of the vortex antivortex pairs. Using the nonlinear Larkin-Ovchinnikov (LO) viscous drag force at higher vortex velocities results in a jump-wise vortex penetration through the surface barrier and a significant increase of the dissipated power. We calculate the effect of dissipation on nonlinear vortex viscosity …
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