Absolute frequency measurements with a robust, transportable 40Ca+ optical clock

Author:

Zhang Huaqing,Huang Yao,Zhang Baolin,Hao Yanmei,Zeng Mengyan,Chen Qunfeng,Wang YuzhuoORCID,Cao Shiying,Lin YigeORCID,Fang Zhanjun,Guan Hua,Gao Kelin

Abstract

Abstract We constructed a transportable 40Ca+ optical clock (with an estimated minimum systematic shift uncertainty of 1.3 × 10 17 and a stability of 5 × 10 15 / τ ) that can operate outside the laboratory. We transported it from the Innovation Academy for Precision Measurement Science and Technology, Chinese Academy of Sciences, Wuhan to the National Institute of Metrology, Beijing. The absolute frequency of the 729 nm clock transition was measured for up to 35 d by tracing its frequency to the second of International System of Units. Some improvements were implemented in the measurement process, such as the increased effective up-time of 91.3% of the 40Ca+ optical clock over a 35-day-period, the reduced statistical uncertainty of the comparison between the optical clock and hydrogen maser, and the use of longer measurement times to reduce the uncertainty of the frequency traceability link. The absolute frequency measurement of the 40Ca+ optical clock yielded a value of 411 042 129 776 400.26 (13) Hz with an uncertainty of 3.2 × 10 16 , which is reduced by a factor of 1.7 compared with our previous results. As a result of the increase in the operating rate of the optical clock, the accuracy of 35 d of absolute frequency measurement can be comparable to the best results of different institutions in the world based on different optical frequency measurements.

Funder

CAS Project for Young Scientists in Basic Research

Natural Science Foundation of Hubei Province

National Natural Science Foundation of China

National Key R&D Programme of China

Interdisciplinary Cultivation Project of the Innovation Academy for Precision Measurement of Science and Technology

Chinese Academy of Sciences Youth Innovation Promotion Association

Publisher

IOP Publishing

Subject

General Engineering

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