English

Extending the fundamental limit of atomic clock stability

Atomic Physics 2026-04-02 v1 Quantum Physics

Abstract

Optical atomic clocks have been rapidly developing in recent decades, resulting in major improvements in both precision and accuracy. As a result, they have become instrumental in multiple areas of applied and fundamental research. Despite all atomic frequency references having more than two energy-levels, the commonly used model for evaluating their ultimate limits assumes a two-level atom. This leads to frequency interrogation protocols and theoretical stability bounds that are suboptimal for a true multi-level atom. The most fundamental stability bound assumes two noise sources - quantum projection noise and spontaneous decay from the excited state. In this work, we analyze a model that includes these noise types and is generalized beyond the two-level assumption, where spontaneous decay can branch to more than a single ground state. This model allows for detection and exclusion of atomic frequency interrogations in which the atom decayed, leading to a frequency stability improvement of up to 4.5 dB\approx 4.5 \text{ dB} compared with the two-level model. Furthermore, we identify an even greater stability enhancement of 5.4 dB\approx 5.4 \text{ dB} for frequency comparisons between atoms in an odd parity Bell state. These enhancements are particularly relevant for the numerous trapped-ion optical clock species that operate close to lifetime-limited stability. We calculate new stability limits for those cases and provide a detailed experimental protocol for frequency interrogation with an 27Al+^{27}\text{Al}^{+} optical ion clock.

Keywords

Cite

@article{arxiv.2604.01099,
  title  = {Extending the fundamental limit of atomic clock stability},
  author = {Ravid Shaniv and Ayush Agrawal and David B. Hume},
  journal= {arXiv preprint arXiv:2604.01099},
  year   = {2026}
}
R2 v1 2026-07-22T20:52:30.149Z