English

Fourier transform detection of weak optical transitions with cyclic routines

Atomic Physics 2021-01-08 v1 Applied Physics

Abstract

We demonstrate a means of detecting weak optical transitions in cold atoms that undergo cyclic routines with high sensitivity. The gain in sensitivity is made by probing atoms on alternate cycles leading to a regular modulation of the ground state atom population when at the resonance frequency. The atomic transition is identified by conducting a fast Fourier transform via algorithm or instrument. We find an enhancement of detection sensitivity compared to more conventional scanning methods of 20\sim 20 for the same sampling time, and can detect clock lines with fewer than 10310^3 atoms in a magneto-optical trap. We apply the method to the (6s2)(6s^{2}) 1S0(6s6p) ^{1}S_{0} - (6s6p) 3P0^{3}P_{0} clock transition in 171^{171}Yb and 173^{173}Yb. The ac-Stark shift of this line in 171^{171}Yb is measured to be 0.19(3) kHz\cdotW1^{-1}\cdotm2^2 at 556 nm.

Keywords

Cite

@article{arxiv.2010.12124,
  title  = {Fourier transform detection of weak optical transitions with cyclic routines},
  author = {Jesse S. Schelfhout and Lilani D. Toms-Hardman and John J. McFerran},
  journal= {arXiv preprint arXiv:2010.12124},
  year   = {2021}
}

Comments

6 pages, 6 figures