High-stability optical clock based on a continuously ground-state cooled Al + ion without compromising its accuracy
Abstract
Single-ion optical clocks have shown systematic frequency uncertainties below 10
−18, but typically require more than one week of averaging to achieve a corresponding statistical uncertainty. This time can be reduced with longer probe times, but comes at the cost of a higher time-dilation shift due to motional heating of the ions in the trap. We show that sympathetic ground-state cooling using electromagnetically induced transparency of an Al
+ clock ion via a cotrapped Ca
+ ion during clock interrogation suppresses the heating of the ions. Al
+ can be kept close to the motional ground state, independent from the chosen interrogation time, at a relative time-dilation shift of (−1.69±0.20)×10
−18. The Ca
+ cooling light introduces an additional light shift on the Al
+ clock transition of (−9.3±1.1)×10
−18. We project that the uncertainty of this light shift can be further reduced by nearly an order of magnitude. This sympathetic cooling enables seconds of interrogation time with 10
−19 motional and cooling laser-induced uncertainties for Al
+ and can be employed in other ion clocks as well.
Details
- Organisation(s)
-
Institute of Quantum Optics
- External Organisation(s)
-
Physikalisch-Technische Bundesanstalt PTB
University of Delaware
- Type
- Article
- Journal
- Physical Review Research
- Volume
- 8
- ISSN
- 2643-1564
- Publication date
- 23.06.2026
- Publication status
- Published
- Peer reviewed
- Yes
- ASJC Scopus subject areas
- General Physics and Astronomy
- Electronic version(s)
-
https://doi.org/10.1103/48zr-2t1p (Access:
Open
)