Rotation-driven transition into coexistent Josephson modes in an atomtronic dc-SQUID
D. M. Jezek, H. M. Cataldo

TL;DR
This paper investigates how rotating a double-well atomtronic system induces transitions between different Josephson regimes, revealing new dynamics and bifurcations that are confirmed by simulations.
Contribution
It introduces a rotation-driven mechanism for transitioning between coexistent Josephson modes in an atomtronic dc-SQUID using a two-mode model.
Findings
Rotation induces phase differences affecting hopping parameters.
A specific rotation frequency range causes a dominant hopping parameter.
Bifurcations occur at frequency limits, altering phase space dynamics.
Abstract
By means of a two-mode model, we show that transitions to different arrays of coexistent regimes in the phase space can be attained by rotating a double-well system, which consists of a toroidal condensate with two diametrically placed barriers. Such a configuration corresponds to the atomtronic counterpart of the well-known direct-current superconducting quantum interference device. Due to the phase gradient experimented by the on-site localized functions when the system is subject to rotation, a phase difference appears on each junction in order to satisfy the quantization of the velocity field around the torus. We demonstrate that such a phase can produce a significant change on the relative values of different types of hopping parameters. In particular, we show that within a determined rotation frequency interval, a hopping parameter, usually disregarded in nonrotating systems,…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Cold Atom Physics and Bose-Einstein Condensates · Advanced Frequency and Time Standards
