Single-Ion Atomic Clock with $3\times10^{-18}$ Systematic Uncertainty
Abstract
We experimentally investigate an optical frequency standard based on the electric octupole (\textit{E}3) transition of a single trapped Yb ion. For the spectroscopy of this strongly forbidden transition, we utilize a Ramsey-type excitation scheme that provides immunity to probe-induced frequency shifts. The cancellation of these shifts is controlled by interleaved single-pulse Rabi spectroscopy which reduces the related relative frequency uncertainty to . To determine the frequency shift due to thermal radiation emitted by the ion's environment, we measure the static scalar differential polarizability of the \textit{E}3 transition as J m/V and a dynamic correction . This reduces the uncertainty due to thermal radiation to . The residual motion of the ion yields the largest contribution to the total systematic relative uncertainty of the clock of .
Cite
@article{arxiv.1602.03908,
title = {Single-Ion Atomic Clock with $3\times10^{-18}$ Systematic Uncertainty},
author = {N. Huntemann and C. Sanner and B. Lipphardt and Chr. Tamm and E. Peik},
journal= {arXiv preprint arXiv:1602.03908},
year = {2016}
}
Comments
5 pages, 4 figures