113 km Free-Space Time-Frequency Dissemination at the 19th Decimal Instability
Abstract
Optical clock networks play important roles in various fields, such as precise navigation, redefinition of "second" unit, and gravitational tests. To establish a global-scale optical clock network, it is essential to disseminate time and frequency with a stability of over a long-distance free-space link. However, such attempts were limited to dozens of kilometers in mirror-folded configuration. Here, we take a crucial step toward future satellite-based time-frequency disseminations. By developing the key technologies, including high-power frequency combs, high-stability and high-efficiency optical transceiver systems, and efficient linear optical sampling, we demonstrate free-space time-frequency dissemination over two independent links with femtosecond time deviation, at 10,000 s residual instability and offset. This level of the stability retains for an increased channel loss up to 89 dB. Our work can not only be directly used in ground-based application, but also firmly laid the groundwork for future satellite time-frequency dissemination.
Keywords
Cite
@article{arxiv.2203.11272,
title = {113 km Free-Space Time-Frequency Dissemination at the 19th Decimal Instability},
author = {Qi Shen and Jian-Yu Guan and Ji-Gang Ren and Ting Zeng and Lei Hou and Min Li and Yuan Cao and Jin-Jian Han and Meng-Zhe Lian and Yan-Wei Chen and Xin-Xin Peng and Shao-Mao Wang and Dan-Yang Zhu and Xi-Ping Shi and Zheng-Guo Wang and Ye Li and Wei-Yue Liu and Ge-Sheng Pan and Yong Wang and Zhao-Hui Li and Jin-Cai Wu and Yan-Yan Zhang and Fa-Xi Chen and Chao-Yang Lu and Sheng-Kai Liao and Juan Yin and Jian-Jun Jia and Cheng-Zhi Peng and Hai-Feng Jiang and Qiang Zhang and Jian-Wei Pan},
journal= {arXiv preprint arXiv:2203.11272},
year = {2023}
}
Comments
27 pages, 13 figures, 2 tables