Stability and chaos of a driven nano-electromechanical Josephson junction
arXiv:1201.2517 · doi:10.1103/PhysRevB.85.195439
Abstract
We consider the motion of and Josephson current through a mechanically oscillating superconducting island asymmetrically embedded in a Josephson junction. The electromechanical coupling is provided by distance dependent tunneling rates between the electrodes and the island. The system asymmetry, resulting from the geometrical configuration, leads, for weak coupling, to an equation of the mechanical motion that reduces to the well-known Duffing equation. At zero bias voltage the island motion is determined by the homogenous Duffing equation that opens up two separate regions of solutions depending on the superconducting phases. The island either moves under influence of an anharmonic single well potential, or is governed by a double well potential that allows for off-center oscillations. Under applied bias voltage the island equation of motion turns into a modified Duffing equation, with time dependent coefficients, that demonstrate both quasi periodic and chaotic behavior.
References in corpus (10)
- A quantum spin transducer based on nano electro-mechancial resonator arrays
- Strong coupling between single-electron tunneling and nano-mechanical motion
- Dynamic manipulation of mechanical resonators in the high amplitude regime through optical backaction
- Nanoelectromechanical Systems
- Superconducting transport through a vibrating molecule
- Quantum electromechanics: Quantum tunneling near resonance and qubits from buckling nanobars
- Surface imaging of inelastic Friedel oscillations
- Real-Space Imaging of Inelastic Friedel-like Surface Oscillations Emerging from Molecular Adsorbates
- Vibrating Superconducting Island in a Josephson Junction
- Dynamical properties of a vibrating molecular quantum dot in a Josephson junction