Detection of ultrafast oscillations in Superconducting Point-Contacts by means of Supercurrent Measurements
arXiv:1107.5167 · doi:10.1103/PhysRevB.84.195415
Abstract
We present a microscopic calculation of the nondissipative current through a superconducting quantum point contact coupled to a mechanical oscillator. Using the non-equilibrium Keldysh Green function approach, we determine the current-phase relation. The latter shows that at certain phases, the current is sharply suppressed. These dips in the current-phase relation provide information about the oscillating frequency and coupling strength of the mechanical oscillator. We also present an effective two-level model from which we obtain analytical expressions describing the position and width of the dips. Our findings are of relevance for nanomechanical resonators based on superconducting materials.
8 pages, 5 figures. Published in Phys. Rev. B
References in corpus (12)
- Radiation-pressure cooling and optomechanical instability of a micro-mirror
- Strong coupling between single-electron tunneling and nano-mechanical motion
- Quantum Optomechanics - throwing a glance
- High frequency GaAs nano-optomechanical disk resonator
- Evidence for long-lived quasiparticles trapped in superconducting point contacts
- Intrinsic noise properties of atomic point contact displacement detectors
- Distortion blockade in classical nano-electromechanical resonator
- Theory of microwave-assisted supercurrent in quantum point contacts
- Cooling of a suspended nanowire by an AC Josephson current flow
- Supercurrent and Andreev bound state dynamics in superconducting quantum point contacts under microwave irradiation
- Vibrating Superconducting Island in a Josephson Junction
- Coulomb blockade for an oscillating tunnel junction