An $^{27}$Al$^{+}$ quantum-logic clock with systematic uncertainty below $10^{-18}$
Abstract
We describe an optical atomic clock based on quantum-logic spectroscopy of the S P transition in Al with a systematic uncertainty of and a frequency stability of . A Mg ion is simultaneously trapped with the Al ion and used for sympathetic cooling and state readout. Improvements in a new trap have led to reduced secular motion heating, compared to previous Al clocks, enabling clock operation with ion secular motion near the three-dimensional ground state. Operating the clock with a lower trap drive frequency has reduced excess micromotion compared to previous Al clocks. Both of these improvements have led to a reduced time-dilation shift uncertainty. Other systematic uncertainties including those due to blackbody radiation and the second-order Zeeman effect have also been reduced.
Keywords
Cite
@article{arxiv.1902.07694,
title = {An $^{27}$Al$^{+}$ quantum-logic clock with systematic uncertainty below $10^{-18}$},
author = {S. M. Brewer and J. -S. Chen and A. M. Hankin and E. R. Clements and C. W. Chou and D. J. Wineland and D. B. Hume and D. R. Leibrandt},
journal= {arXiv preprint arXiv:1902.07694},
year = {2019}
}
Comments
5 pages 4 figures + supplemental material 9 pages 5 figures