English

High-Flux Cold Ytterbium Atomic Beam Source Using Two-Dimensional Laser Cooling with Intercombination Transition

Atomic Physics 2022-10-27 v4

Abstract

We demonstrate a high-flux and low transverse temperature atomic beam of ytterbium by applying two-dimensional cooling using the 1S0-3P1{}^1\mathrm{S}_0\text{-}{}^3\mathrm{P}_1 intercombination transition to the cold atomic beam produced by the dipolar-allowed 1S0-1P1{}^1\mathrm{S}_0\text{-}{}^1\mathrm{P}_1 transition. The optimized transverse temperature of 11±9μK11 \pm 9\,\mathrm{\mu K} and an atomic flux of (7.5±1.0)×108atoms/s(7.5 \pm 1.0) \times 10^8\,\mathrm{atoms/s} are obtained for the atomic beam whose longitudinal velocity is 30m/s30\,\mathrm{m/s}. The transverse temperature is maintained below 23μK23\,\mathrm{\mu K}, while the flux is above 6.5×108atoms/s6.5 \times 10^8\,\mathrm{atoms/s} in the longitudinal velocity range of 2230m/s22 - 30\,\mathrm{m/s}. We also discuss the feasibility of further narrowing the transverse momentum width to less than the recoil momentum using the momentum-selective optical transition between the ground state and the long-lived metastable state. The transverse momentum width of our atomic beam, which is narrower than 5.7 times the recoil momentum, is a good starting point for the proposed method.

Keywords

Cite

@article{arxiv.2104.11481,
  title  = {High-Flux Cold Ytterbium Atomic Beam Source Using Two-Dimensional Laser Cooling with Intercombination Transition},
  author = {Toshiyuki Hosoya and Ryotaro Inoue and Tomoya Sato and Mikio Kozuma},
  journal= {arXiv preprint arXiv:2104.11481},
  year   = {2022}
}

Comments

7 pages, 6 figures

R2 v1 2026-06-24T01:27:22.776Z