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Title: Non-equilibrium coherent vortex states and subharmonic giant Shapiro steps in Josephson junction arrays

Journal Article · · International Journal of Modern Physics B
 [1];  [2]
  1. Los Alamos National Lab., NM (United States). Theoretical Div.
  2. Univ. Utrecht (Netherlands). Inst. voor Theoretische Fysica

This is a review of recent work on the dynamic response of Josephson junction arrays driven by dc and ac currents. The arrays are modeled by the resistively shunted Josephson junction model, appropriate for proximity effect junctions, including self-induced magnetic fields as well as disorder. The relevance of the self-induced fields is measured as a function of a parameter {kappa} = {lambda}{sub L}/a, with {lambda}{sub L} the London penetration depth of the arrays, and a the lattice spacing. The transition from Type II ({kappa} > 1) to Type I ({kappa} < 1) behavior is studied in detail. The authors compare the results for models with self, self + nearest-neighbor, and full inductance matrices. In the {kappa} = {infinity} limit, they find that when the initial state has at least one vortex-antivortex pair, after a characteristic transient time these vortices unbind and radiate other vortices. These radiated vortices settle into a parity-broken, time-periodic, axisymmetric coherent vortex state (ACVS), characterized by alternate rows of positive and negative vortices lying along a tilted axis. The ACVS produces subharmonic steps in the current voltage (IV) characteristics, typical of giant Shapiro steps. For finite {kappa} they find that the IV`s show subharmonic giant Shapiro steps, even at zero external magnetic field. They find that these subharmonic steps are produced by a whole family of coherent vortex oscillating patterns, with their structure changing as a function of {kappa}. In general, they find that these patterns are due to a breakdown of translational invariance produced, for example, by disorder of antisymmetric edge-fields. The zero field case results are in good qualitative agreement with experiments in Nb-Au-Nb arrays.

Sponsoring Organization:
USDOE
OSTI ID:
32064
Journal Information:
International Journal of Modern Physics B, Vol. 8, Issue 27; Other Information: PBD: 15 Dec 1994
Country of Publication:
United States
Language:
English

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