Implementation of an atomtronic SQUID in a strongly confined toroidal condensate
- verfasst von
- Hannes Kiehn, Vijay Pal Singh, Ludwig Mathey
- Abstract
We investigate the dynamics of an atomtronic superconducting quantum interference device (SQUID) created by two mobile barriers, moving at two different, constant velocities in a quasi-one-dimensional toroidal condensate. We implement a multiband truncated Wigner approximation numerically to demonstrate the functionality of a SQUID reflected in the oscillatory voltage-flux dependence. The relative velocity of the two barriers results in a chemical potential imbalance analogous to a voltage in an electronic system. The average velocity of the two barriers corresponds to a rotation of the condensate, analogous to a magnetic flux. We demonstrate that the voltage equivalent shows characteristic flux-dependent oscillations. We point out the parameter regime of barrier heights and relaxation times for the phase slip dynamics, resulting in a realistic protocol for atomtronic SQUID operation.
- Organisationseinheit(en)
-
QuantumFrontiers
- Externe Organisation(en)
-
Universität Hamburg
- Typ
- Artikel
- Journal
- Physical Review Research
- Band
- 4
- ISSN
- 2643-1564
- Publikationsdatum
- 11.07.2022
- Publikationsstatus
- Veröffentlicht
- Peer-reviewed
- Ja
- ASJC Scopus Sachgebiete
- Physik und Astronomie (insg.)
- Elektronische Version(en)
-
https://doi.org/10.1103/PhysRevResearch.4.033024 (Zugang:
Offen)