English

Improved absolute clock stability by the joint interrogation of two atomic states

Quantum Physics 2022-06-01 v1

Abstract

Improving the clock stability is of fundamental importance for the development of quantum-enhanced metrology. One of the main limitations arises from the randomly-fluctuating local oscillator (LO) frequency, which introduces "phase slips" for long interrogation times and hence failure of the frequency-feedback loop. Here we propose a strategy to improve the stability of atomic clocks by interrogating two out-of-phase state sharing the same LO. While standard Ramsey interrogation can only determine phases unambiguously in the interval [π/2,π/2][-\pi/2,\pi/2], the joint interrogation allows for an extension to [π,π][-\pi,\pi], resulting in a relaxed restriction of the Ramsey time and improvement of absolute clock stability. Theoretical predictions are supported by ab-initio numerical simulation for white and correlated LO noise. While our basic protocol uses uncorrelated atoms, we have further extended it to include spin-squeezing and further improving the scaling of clock stability with the number of atoms. Our protocol can be readily tested in current state-of-the-art experiments.

Keywords

Cite

@article{arxiv.2104.14309,
  title  = {Improved absolute clock stability by the joint interrogation of two atomic states},
  author = {Weidong Li and Shuyuan Wu and Augusto Smerzi and Luca Pezzè},
  journal= {arXiv preprint arXiv:2104.14309},
  year   = {2022}
}

Comments

15 pages, 10 figures

R2 v1 2026-06-24T01:37:53.011Z