4.5 Article

Angular Momentum Josephson Effect between Two Isolated Condensates

Journal

CHINESE PHYSICS LETTERS
Volume 38, Issue 6, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/0256-307X/38/6/060301

Keywords

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Funding

  1. National Key Research and Development Program in China [2017YFA0304504, 2017YFA0304103]
  2. National Natural Science Foundation of China [11774328]

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By introducing the influence of the Zeeman field, trapped Bose gases can exhibit angular momentum Josephson effect, generating oscillations with different periods and characteristics. The dynamics in the self-trapping regime are explained by the time-dependent evolution of constant-energy trajectories in phase space, which has superior performance compared to previous models.
We demonstrate that the two degenerate energy levels in spin-orbit coupled trapped Bose gases, coupled by a quenched Zeeman field, can be used for angular momentum Josephson effect. In a static quenched field, we can realize a Josephson oscillation with a period ranging from millisecond to hundreds of milliseconds. Moreover, by a driven Zeeman field, we realize a new Josephson oscillation, in which the population imbalance may have the same expression as the current in the direct-current Josephson effect. When the dynamics of the condensate cannot follow up the modulation frequency, it is in the self-trapping regime. This new dynamic is understood from the time-dependent evolution of the constant-energy trajectory in the phase space. This model has several salient advantages compared to the previous ones. The condensates are isolated from their excitations by a finite gap, thus can greatly suppress the damping effect induced by thermal atoms and Bogoliubov excitations. The oscillation period can be tuned by several orders of magnitude without influencing other parameters. In experiments, the dynamics can be mapped out from spin and momentum spaces, thus it is not limited by the spatial resolution in absorption imaging. This system can serve as a promising platform for matter wave interferometry and quantum metrology.

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