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Uncertainty evaluation of an $^{171}$Yb optical lattice clock at NMIJ

Atomic Physics 2019-01-07 v1

Abstract

We report an uncertainty evaluation of an 171^{171}Yb optical lattice clock with a total fractional uncertainty of 3.6×10163.6\times10^{-16}, which is mainly limited by the lattice-induced light shift and the blackbody radiation shift. Our evaluation of the lattice-induced light shift, the density shift, and the second-order Zeeman shift is based on an interleaved measurement where we measure the frequency shift using the alternating stabilization of a clock laser to the 6s21S06s6p3P0\mathrm{6s^{2}\,^{1}S_{0}-6s6p\,^{3}P_{0}} clock transition with two different experimental parameters. In the present evaluation, the uncertainties of two sensitivity coefficients for the lattice-induced hyperpolarizability shift dd incorporated in a widely-used light shift model by RIKEN and the second-order Zeeman shift aZa_{\mathrm{Z}} are improved compared with the uncertainties of previous coefficients. The hyperpolarizability coefficient dd is determined by investigating the trap potential depth and the light shifts at the lattice frequencies near the two-photon transitions 6s6p3P06s8p3P0\mathrm{6s6p^{3}P_{0}-6s8p^{3}P_{0}}, 6s8p3P2\mathrm{6s8p^{3}P_{2}}, and 6s5f3F2\mathrm{6s5f^{3}F_{2}}. The obtained values are d=1.1(4)d=-1.1(4) μ\mathrm{\mu}Hz and aZ=6.6(3)a_{\mathrm{Z}}=-6.6(3) Hz/mT2^{2}. These improved coefficients should reduce the total systematic uncertainties of Yb lattice clocks at other institutes.

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Cite

@article{arxiv.1901.00954,
  title  = {Uncertainty evaluation of an $^{171}$Yb optical lattice clock at NMIJ},
  author = {Takumi Kobayashi and Daisuke Akamatsu and Yusuke Hisai and Takehiko Tanabe and Hajime Inaba and Tomonari Suzuyama and Feng-Lei Hong and Kazumoto Hosaka and Masami Yasuda},
  journal= {arXiv preprint arXiv:1901.00954},
  year   = {2019}
}