Dynamics of an annular Josephson junction in a rotating magnetic field

Niels Gro/nbech-Jensen, Boris A. Malomed, and Mogens R. Samuelsen
Phys. Rev. B 46, 294 – Published 1 July 1992
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Abstract

We study analytically and numerically the dynamics of a solitary fluxon in a long annular damped Josephson junction placed into a rotating magnetic field, which is produced by superposition of two mutually perpendicular ac fields with a phase difference of π/2. We demonstrate that the rotating magnetic field drives the fluxon as a traveling wave. The step in the I-V characteristic, corresponding to the velocity of the fluxon coinciding with the phase velocity of the driving wave, is predicted and its size is calculated. It is also demonstrated that the I-V curve has a parabolic profile near the edges of the step. For the case where the fluxon is slowly dragged by a fast traveling wave, the drift velocity is found. The analytical results are in very good agreement with numerical experiments performed on the perturbed sine-Gordon system. Finally the system is analyzed analytically for moderate or small lengths of junctions.

  • Received 3 January 1992

DOI:https://doi.org/10.1103/PhysRevB.46.294

©1992 American Physical Society

Authors & Affiliations

Niels Gro/nbech-Jensen

  • Department of Applied Physics, Stanford University, Stanford, California 94305

Boris A. Malomed and Mogens R. Samuelsen

  • Physics Laboratory I, The Technical University of Denmark, 2800 Lyngby, Denmark

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Vol. 46, Iss. 1 — 1 July 1992

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