English

Shapiro effect in atomchip-based bosonic Josephson junctions

Quantum Physics 2015-03-18 v1 Quantum Gases

Abstract

We analyze the emergence of Shapiro resonances in tunnel-coupled Bose-Einstein condensates, realizing a bosonic Josephson junction. Our analysis is based on an experimentally relevant implementation using magnetic double well potentials on an atomchip. In this configuration the potential bias (implementing the junction voltage) and the potential barrier (realizing the Josephson link) are intrinsically coupled. We show that the dynamically driven system exhibits significantly enhanced Shapiro resonances which will facilitate experimental observation. To describe the systems response to the dynamic drive we compare a single-mode Gross-Pitaevskii (GP) description, an improved two-mode (TM) model and the self-consistent multi-configurational time dependent Hartree for Bosons (MCTDHB) method. We show that in the case of significant atom-atom interactions or strong driving, the spatial dynamics of the involved modes have to be taken into account, and only the MCTDHB method allows reliable predictions.

Keywords

Cite

@article{arxiv.1102.1459,
  title  = {Shapiro effect in atomchip-based bosonic Josephson junctions},
  author = {Julian Grond and Thomas Betz and Ulrich Hohenester and Norbert J. Mauser and Joerg Schmiedmayer and Thorsten Schumm},
  journal= {arXiv preprint arXiv:1102.1459},
  year   = {2015}
}

Comments

16 pages, 4 figures

R2 v1 2026-06-21T17:23:00.066Z