Proposal for a hybrid clock system consisting of passive and active optical clocks and a fully stabilized microcomb

Author:

Yu DeshuiORCID,Vollmer Frank1,Del’Haye Pascal23,Zhang Shougang4

Affiliation:

1. University of Exeter

2. Max Planck Institute for the Science of Light

3. Friedrich Alexander University Erlangen Nuremberg

4. University of Chinese Academy of Sciences

Abstract

Optical atomic clocks produce highly stable frequency standards and frequency combs bridge clock frequencies with hundreds of terahertz difference. In this paper, we propose a hybrid clock scheme, where a light source pumps an active optical clock through a microresonator-based nonlinear third harmonic process, serves as a passive optical clock via indirectly locking its frequency to an atomic transition, and drives a chip-scale microcomb whose mode spacing is stabilized using the active optical clock. The operation of the whole hybrid system is investigated through simulation analysis. The numerical results show: (i) The short-term frequency stability of the passive optical clock follows an Allan deviation of σ y (τ) = 9.3 × 10−14τ−1/2 with the averaging time τ, limited by the population fluctuations of interrogated atoms. (ii) The frequency stability of the active optical clock reaches σ y (τ) = 6.2 × 10−15τ−1/2, which is close to the quantum noise limit. (iii) The mode spacing of the stabilized microcomb has a shot-noise-limited Allan deviation of σ y (τ) = 1.9 × 10−11τ−1/2. Our hybrid scheme may be realized using recently developed technologies in (micro)photonics and atomic physics, paving the way towards on-chip optical frequency comparison, synthesis, and synchronization.

Funder

National Time Service Center

Engineering and Physical Sciences Research Council

European Research Council

Marie Sklodowska Curie Innovative Training Network

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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