English

A robust and modular cesium magneto-optical trap using diverging laser beams

Atomic Physics 2026-07-14 v1 Optics Quantum Physics

Abstract

Magneto-optical traps (MOTs) are a workhorse technology for neutral-atom quantum sensing, simulation, and computing. Here, we demonstrate a MOT optimized for inertial quantum sensing and precision metrology applications. Our MOT traps 4×1084\times10^8 cesium (Cs) atoms in a robust, modular system that achieves stable operation through two design features: (1) we use diverging cooling laser beams to reduce unwanted reflections and (2) optical elements are mounted in a fiber-coupled, compact, and modular cage rigidly attached to the vacuum chamber. Following polarization-gradient cooling (PGC), the system produces atom samples with temperatures below 10 μ{\mu}K, similar to those achieved in conventional MOTs that use collimated laser beams. In addition, we observe trapping of 2×1072\times10^7 Cs atoms in a non-conventional MOT geometry, where the cooling laser beams are diagonal to the principal axis of the quadrupole magnetic field.

Cite

@article{arxiv.2607.13145,
  title  = {A robust and modular cesium magneto-optical trap using diverging laser beams},
  author = {Paola Luna and Kenneth Nakasone and Andrei Zhukov and Philip Wondrak and Brian P. Anderson and Benjamin F. Kanzer and Cristian D. Panda},
  journal= {arXiv preprint arXiv:2607.13145},
  year   = {2026}
}

Comments

14 pages, 7 figures