Strong mechanically-induced effects in DC current-biased suspended Josephson junctions
arXiv:1709.01323 · doi:10.1103/PhysRevB.97.014526
Abstract
Superconductivity is a result of quantum coherence at macroscopic scales. Two superconductors separated by a metallic or insulating weak link exhibit the AC Josephson effect - the conversion of a DC voltage bias into an AC supercurrent. This current may be used to activate mechanical oscillations in a suspended weak link. As the DC voltage bias condition is remarkably difficult to achieve in experiments, here we analyse theoretically how the Josephson effect can be exploited to activate and detect mechanical oscillations in the experimentally relevant condition with purely DC current bias. We unveil for the first time how changing the strength of the electromechanical coupling results in two qualitatively different regimes showing dramatic effects of the oscillations on the DC current-voltage characteristic of the device. These include the apperance of Shapiro-like plateaux for weak coupling and a sudden mechanically-induced retrapping for strong coupling. Our predictions, measurable in state of the art experimental setups, allow the determination of the frequency and quality factor of the resonator using DC only techniques.
10 pages, 6 figures
References in corpus (15)
- Bipolar supercurrent in graphene
- Franck-Condon blockade and giant Fano factors in transport through single molecules
- Quantum supercurrent transistors in carbon nanotubes
- Carbon nanotubes as ultra-high quality factor mechanical resonators
- Franck-Condon blockade in suspended carbon nanotube quantum dots
- Theory of the Franck-Condon blockade regime
- Tunneling in suspended carbon nanotubes assisted by longitudinal phonons
- Nanotube mechanical resonators with quality factors of up to 5 million
- High quality-factor mechanical resonators based on WSe2 monolayers
- Coupling carbon nanotube mechanics to a superconducting circuit
- Quantum analysis of a linear DC SQUID mechanical displacement detector
- Decoherence and Recoherence in a Vibrating RF SQUID
- Cooling of a suspended nanowire by an AC Josephson current flow
- Molybdenum-Rhenium superconducting suspended nanostructures
- Ground-state cooling of a suspended nanowire through inelastic macroscopic quantum tunneling in a current-biased Josephson junction