Dynamical phase transition in two-dimensional fully frustrated Josephson junction arrays with resistively shunted junction dynamics
The dynamical phase transitions in two-dimensional fully frustrated Josephson junction arrays at zero temperature are investigated numerically with the resistively shunted junction model through the fluctuating twist boundary condition. The model is subjected to a driving current with nonzero orthogonal components i <Subscript> x </Subscript>, i <Subscript> y </Subscript> parallel to both axes of the square lattice. We find a roughly lattice size independent phase diagram with three dynamical phases: a pinned vortex lattice phase, a moving vortex lattice phase and a moving plastic phase. The phase diagram shows a direct transition from the pinned vortex to the moving vortex phase and the separation of the pinned vortex and the moving plastic phases. The time-dependent voltages v <Subscript> x </Subscript> and v <Subscript> y </Subscript> are periodic in the moving vortex lattice phase. But they are aperiodic in the moving plastic phase, resulting in non-monotonic characteristics and hysteresis in the current-voltage curves. It is found that the characteristic frequency is twice the time-averaged voltage in the moving vortex phase and around the time-averaged voltage in the plastic flow regime. Copyright Springer-Verlag Berlin/Heidelberg 2003
Year of publication: |
2003
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Authors: | Luo, M.-B. ; Chen, Q.-H. |
Published in: |
The European Physical Journal B - Condensed Matter and Complex Systems. - Springer. - Vol. 35.2003, 2, p. 201-207
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Publisher: |
Springer |
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