• Chinese Physics B
  • Vol. 29, Issue 9, (2020)
Di Ai1, Hao Qiao1, Shuang Zhang1, Li-Meng Luo1, Chang-Yue Sun1, Sheng Zhang1, Cheng-Quan Peng1, Qi-Chao Qi1, Tao-Yun Jin1, Min Zhou1, and Xin-Ye Xu1、2、†
Author Affiliations
  • 1State Key Laboratory of Precision Spectroscopy, East China Normal University, Shanghai 200062, China
  • 2Shanghai Research Center for Quantum Sciences, Shanghai 01315, China
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    DOI: 10.1088/1674-1056/aba099 Cite this Article
    Di Ai, Hao Qiao, Shuang Zhang, Li-Meng Luo, Chang-Yue Sun, Sheng Zhang, Cheng-Quan Peng, Qi-Chao Qi, Tao-Yun Jin, Min Zhou, Xin-Ye Xu. Study of optical clocks based on ultracold 171Yb atoms[J]. Chinese Physics B, 2020, 29(9): Copy Citation Text show less

    Abstract

    The optical atomic clocks have the potential to transform global timekeeping, relying on the state-of-the-art accuracy and stability, and greatly improve the measurement precision for a wide range of scientific and technological applications. Herein we report on the development of the optical clock based on 171Yb atoms confined in an optical lattice. A minimum width of 1.92-Hz Rabi spectra has been obtained with a new 578-nm clock interrogation laser. The in-loop fractional instability of the 171Yb clock reaches 9.1 × 10-18 after an averaging over a time of 2.0 × 104 s. By synchronous comparison between two clocks, we demonstrate that our 171Yb optical lattice clock achieves a fractional instability of 4.60×10-16/τ.
    Di Ai, Hao Qiao, Shuang Zhang, Li-Meng Luo, Chang-Yue Sun, Sheng Zhang, Cheng-Quan Peng, Qi-Chao Qi, Tao-Yun Jin, Min Zhou, Xin-Ye Xu. Study of optical clocks based on ultracold 171Yb atoms[J]. Chinese Physics B, 2020, 29(9):
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