Asymmetric long Josephson junction acting as a ratchet for a quantum field
arXiv:0908.0420 · doi:10.1103/PhysRevLett.104.190602
Abstract
We study the escape rate of flux quanta in a long Josephson junction having an asymmetric spatial inhomogeneous critical current density. We show that such a junction can behave as a quantum ratchet when it is driven by an ac current in the presence of a magnetic field. The rectification gives rise to an onset of the dc voltage across the junction. The usual approach of particle-like tunneling cannot describe this rectification, and a quantum field theory description is required. We also show that under definite conditions the rectification direction and, consequently the dc voltage, can change its sign when varying the temperature near the crossover temperature between the quantum and classical regimes.
4 pages, 3 figures
References in corpus (7)
- Artificial Brownian motors: Controlling transport on the nanoscale
- Brownian motors
- Macroscopic quantum tunneling in a d-wave high-Tc superconductor
- Enhanced Macroscopic Quantum Tunneling in BiSrCaCuO Intrinsic Josephson Junction Stacks
- High efficiency deterministic Josephson Vortex Ratchet
- Macroscopic quantum tunneling and quasiparticle-tunneling blockade effect in s-wave/d-wave hybrid junctions
- Quantum electrodynamics and photon-assisted tunnelling in long Josephson junctions
Cited by in corpus (6)
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- Macroscopic quantum tunneling and phase diffusion in a LaSrCuO intrinsic Josephson junction stack
- Vortex quantum tunnelling versus thermal activation in ultrathin superconducting nanoislands