English

Fast long-distance transport of cold cesium atoms

Quantum Gases 2022-05-11 v1 Quantum Physics

Abstract

Transporting cold atoms between distant sections of a vacuum system is a central ingredient in many quantum simulation experiments, in particular in setups, where a large optical access and precise control over magnetic fields is needed. In this work, we demonstrate optical transport of cold cesium atoms over a total transfer distance of about 4343\,cm in less than 3030\,ms. The high speed is facilitated by a moving lattice, which is generated via the interference of a Bessel and a Gaussian laser beam. We transport about 3×1063\times 10^6 atoms at a temperature of a few μ\muK with a transport efficiency of about 75%75\%. We provide a detailed study of the transport efficiency for different accelerations and lattice depths and find that the transport efficiency is mainly limited by the potential depth along the direction of gravity. To highlight the suitability of the optical-transport setup for quantum simulation experiments, we demonstrate the generation of a pure Bose-Einstein condensate with about 2×1042\times 10^4 atoms. We find a robust final atom number within 2%2\% over a duration of 2.52.5\,h with a standard deviation of <5%<5\% between individual experimental realizations.

Keywords

Cite

@article{arxiv.2109.03804,
  title  = {Fast long-distance transport of cold cesium atoms},
  author = {Till Klostermann and Cesar R. Cabrera and Hendrik von Raven and Julian F. Wienand and Christian Schweizer and Immanuel Bloch and Monika Aidelsburger},
  journal= {arXiv preprint arXiv:2109.03804},
  year   = {2022}
}