Improved systematic uncertainty evaluation of the 171Yb optical lattice clock NMIJ-Yb1 with uncertainty of 2.6×10-17
Takumi Kobayashi, Akiko Nishiyama, Ikuhiko Saito, Daisuke Akamatsu, Akio Kawasaki, Shintaro Nagase, Masami Yasuda
Abstract
We report a systematic uncertainty evaluation of the 171Yb optical lattice clock NMIJ-Yb1 (NMIJ: National Metrology Institute of Japan) with a fractional frequency uncertainty of 2.6×10-17, improved by a factor of 3.8 compared with our previous uncertainty. The uncertainty of the lattice light shift is reduced to 1.6×10-17 by preparing axially sideband-cooled atoms in a shallow optical lattice. Different models to calculate the lattice light shift are compared, taking account of possible model-dependent biases due to the treatment of the radial motion of atoms trapped in the optical lattice. The uncertainty of the blackbody radiation shift reaches 7.0×10-18 by measuring the radiative temperature at the position of atoms with an in-vacuum temperature sensor. We also demonstrate the nearly continuous operation of NMIJ-Yb1 with an uptime of 91.3 \% for 10 days, showing the potential for future improvement of the calibration uncertainty of International Atomic Time.
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