1. Guiling Wu;Liang Hu;Jianguo Shen;Weiwen Zou;Jianping Chen,Encoding and decoding methods for high-precision time transfer and encoding and decoding devices,2017-01-03,美国,US9537576B2
2. Guiling Wu;Liang Hu;Hao Zhang;Jianping Chen,Method and system for high-precision two-way fiber optic time transfer,2018-08-28,美国,US10063315B2
3. 吴龟灵;左发兴;胡亮;陈建平,分布式光纤时间频率联合传递系统和传递方法,2020-02-07,中国,ZL201910215814.X
4. 胡亮;吴龟灵;陈建平,一种在被动相位补偿光学频率传递链路中的中继装置和中继方法,2021-11-05,中国,ZL202010786516.9
5. 吴龟灵;左发兴;胡亮;陈建平,一种无需链路校准的分布式光纤时间频率传递系统和传递方法,2021-11-05,中国,ZL202011361829.6
6. 胡亮;吴龟灵;陈建平,光纤微波与光学频率同时传递装置与传递方法,2021-11-30,中国,ZL201910274716.3
7. 胡亮;吴龟灵;陈建平,一种用于光学频率传递的前馈相位补偿中继站装置与方法,2022-03-08,中国,ZL202011547745.1
8. 胡亮;吴龟灵;陈建平,级联的光学频率传递装置和传递方法,2022-05-17,中国,ZL202110701941.8
9. 吴龟灵;师平洋;胡亮;孔梦雅;陈建平,用于环形光纤链路的光纤微波频率传递系统,2022-05-17,中国,ZL201910636309.2
10. 胡亮;陆梁军;吴龟灵;周林杰;刘娇;陈建平,硅基集成光学频率传递系统,2022-05-27,中国,ZL202110702067.X
11. 胡亮;吴龟灵;陈建平,电光调制双光梳时间频率同步装置与方法,2020-07-22,中国,ZL202010708628.2
12. 吴龟灵;谢昆峰;左发兴;胡亮;陈建平,一种将时间和频率传递信号复合到单个100G波分复用信道传输的装置,2022-08-09,中国,ZL202110451821.7
13. 胡亮;吴龟灵;陈建平,基于被动相位补偿的微波频率传递装置及传递方法,2022-09-02,中国,ZL201911335565.4
14. 胡亮;吴龟灵;陈建平,基于被动相位补偿的光学频率传递装置与传递方法,2022-09-02,中国,ZL201911298790.5
15. 胡亮;田雪阳;吴龟灵;陈建平,基于多次反射的分布式光学频率传递装置与传递方法,2022-10-11,中国,ZL202010111641.X
16. 胡亮;吴龟灵;陈建平,基于用户端被动相位补偿的光学频率传递装置与传递方法,2022-10-11,中国,ZL202010098975.8
17. 胡亮;吴龟灵;陈建平,基于环形光纤链路的光学频率传递装置与传递方法,2022-11-01,中国,ZL202010114992.6
18. 胡亮;吴龟灵;陈建平,基于被动相位补偿的分布式光学频率传递装置与传递方法,2023-02-07,中国,ZL201911306753.4
19. 胡亮;王龙;吴龟灵;刘娇;陈建平,基于延时控制的光学频率传递装置与传递方法,2023-02-10,中国,ZL202111270550.1
20. 胡亮;吴龟灵;陆梁军;周林杰;刘娇;金敏慧;陈建平,通用型硅基集成光学频率传递芯片,2023-02-28,中国,ZL202210388319.0
21. 胡亮;李奇;吴龟灵;刘娇;陈建平,分布式光学毫米波/太赫兹传递系统和传递方法,2023-03-10,中国,ZL202111522505.0
22. 胡亮;李奇;吴龟灵;刘娇;陈建平,基于被动相位补偿的光学毫米波/太赫兹传递系统和传递方法,2023-03-14,中国,ZL202210100217.4
23. 吴龟灵;左发兴;谢昆峰;胡亮;陈建平,时间同步精度增强的光纤时间频率传递系统和传递方法,2023-03-28,中国,ZL202111581552.2
24. 胡亮;仇子昂;吴龟灵;周林杰;陆梁军;陈建平,硅基集成光子毫米波和太赫兹的传递系统,2023-03-28,中国,ZL202210137119.8
25. 胡亮;李奇;吴龟灵;刘娇;陈建平,高精度光学毫米波/太赫兹传递系统和传递方法,2023-04-21,中国,ZL202111522543.6
26. 吴龟灵;王龙;胡亮;陈建平,单纤双向光纤链路中双向光放大器增益的优化装置与优化方法,2023-06-13,中国,ZL202210105462.4
27. 胡亮;仇子昂;吴龟灵;陆梁军;周林杰;陈建平,通用型硅基光子毫米波/太赫兹芯片及其传递系统和方法,2023-06-29,中国,ZL202210145441.5
28. Liang Hu;Guiling Wu;Jianping Chen,Optical frequency transfer device based on passive phase compensation and transfer method,2023-09-19,美国,US17733972
29. 胡亮;吴龟灵;刘娇;金敏慧;陈建平,一种光学频率与时间同时传递系统与传递方法,2023-10-17,中国,ZL202210382730.7
30. 胡亮;李奇;吴龟灵;刘娇;金敏慧;陈建平,基于环形光纤链路的光子毫米波/太赫兹传递系统和传递方法,2023-11-03,中国,ZL202210388318.6
1. L. Hu, N. Poli, L. Salvi, and G. M. Tino, Atom interferometry with the Sr optical clock transition, Physical Review Letters 119(26), p.263601, 2017(Editors’ Suggestion).
2. R. P. del Aguila, T. Mazzoni, L. Hu, L. Salvi, G. M. Tino, and N. Poli, Bragg gravity-gradiometer using the 1S0–3P1 intercombination transition of 88Sr. New Journal of Physics, 20(4), p.043002, 2018.
3. L. Hu, E. Wang, L. Salvi, J. N. Tinsley, G. M. Tino, and N. Poli, Sr atom interferometry with the optical clock transition as a gravimeter and a gravity gradiometer. Classical and quantum gravity, 37(1), p.014001, 2019.
4. X. Tian, L. Hu, G. Wu, and J. Chen, Hybrid fiber-optic radio frequency and optical frequency dissemination with a single optical actuator and dual-optical phase stabilization. Journal of Lightwave Technology, 38(16), pp.4270-4278, 2020.
5. L. Hu, X. Tian, G. Wu, M. Kong, J. Shen, and J. Chen, Multi-node optical frequency dissemination with post automatic phase correction. Journal of Lightwave Technology, 38(14), pp.3644-3651, 2020.
6. L. Hu, X. Tian, L. Wang, G. Wu, and J. Chen, Passive optical phase stabilization on a ring fiber network. Journal of Lightwave Technology, 38(21), pp.5916-5924, 2020.
7. L. Hu, X. Tian, G. Wu, and J. Chen, Passive optical phase noise cancellation. Optics Letters, 45(15), pp.4308-4311, 2020.
8. L. Hu, R. Xue, G. Wu, and J. Chen, Performance of digital servos in an optical frequency transfer network. Review of Scientific Instruments, 92(5), p.053709, 2021.
9. Q. Li, L. Hu, J. Zhang, J. Chen, and G. Wu, Fiber radio frequency transfer using bidirectional frequency division multiplexing dissemination. IEEE Photonics Technology Letters, 33(13), pp.660-663, 2021.
10. R. Xue, L. Hu, J. Shen, J. Chen, and G. Wu, Branching optical frequency transfer with enhanced post automatic phase noise cancellation. Journal of Lightwave Technology, 39(14), pp.4638-4645, 2021.
11. L. Hu, R. Xue, X. Tian, G. Wu, and J. Chen, All-passive multiple-place optical phase noise cancellation. Optics Letters, 46(6), pp.1381-1384, 2021.
12. Q. Li, L. Hu, J. Chen, and G. Wu, Studying the double Rayleigh backscattering noise effect on fiber-optic radio frequency transfer. IEEE Photonics Journal, 13(2), pp.1-10, 2021.
13. F. Zuo, Z. Chen, L. Hu, J. Chen, Y. Jin, and G. Wu, Multiple-node time synchronization over hybrid star and bus fiber network without requiring link calibration. Journal of Lightwave Technology, 39(7), pp.2015-2022, 2021.
14. F. Zuo, K. Xie, L. Hu, J. Chen, and G. Wu, 13134-km fiber-optic time synchronization. Journal of Lightwave Technology, 39(20), pp.6373-6380, 2021.
15. L. Wang, R. Xue, W. Jiao, L. Hu, J. Chen, and G. Wu, Enhanced phase noise reduction in localized two-way optical frequency comparison. Journal of Lightwave Technology, 40(13), pp.4161-4168, 2022.
16. F. Zuo, Q. Li, K. Xie, L. Hu, J. Chen, and G. Wu, Fiber-optic joint time and frequency transmission with enhanced time precision. Optics Letters, 47(4), pp.1005-1008, 2022.
17. X. Zhang, L. Hu, X. Deng, Q. Zang, J. Liu, D. Jiao, J. Gao, R. Dong, T. Liu, G. Wu, and J. Chen, All-Passive Cascaded Optical Frequency Transfer. IEEE Photonics Technology Letters, 34(8), pp.413-416, 2022.
18. Q. Li, L. Hu, J. Zhang, J. Chen, and G. Wu, Multiple-access relay stations for long-haul fiber-optic radio frequency transfer. Optics Express, 30(11), pp.18402-18414, 2022.
19. X. Zhang, X. Deng, Q. Zang, D. Jiao, J. Gao, D. Wang, Q. Zhou, J. Liu, G. Xu, R. Dong, and T. Liu, Coherent Optical Frequency Transfer via a 490 km Noisy Fiber Link. Chinese Physics Letters, 39(4), p.044201, 2022.
20. L. Hu, R. Xue, X. Cao, J. Liu, K. Wu, G. Wu, and J. Chen, Free-space point-to-multiplepoint optical frequency transfer with lens assisted integrated beam steering. IEEE Transactions on Instrumentation and Measurement, 71, pp.1-10, 2022.
21. X. Zhang, L. Hu, X. Deng, Q. Zang, D. Jiao, J. Gao, D. Wang, Q. Zhou, J. Liu, G. Xu, and T. Liu, Passively stable dissemination of ultrastable optical frequency via a noisy field fiber network. Optics & Laser Technology, 157, p.108738, 2023.
22. Shen, J., Qiu, Z., Xue, R., Hu, L., Liu, J., Wu, G., Zhang, X., Deng, X., Dong, R., Liu, T. and Zhang, S., 2023. Multiple-branch optical frequency transfer without the frequency allocation constraints. Journal of Lightwave Technology, 41(17), pp.5529-5537.
23. Wang, L., Jiao, W., Hu, L., Chen, J. and Wu, G., 2023. Residual timing jitter in the free-space optical two-way time and frequency transfer caused by atmospheric turbulence. Optics & Laser Technology, 163, p.109365.
24. Li, Q., Hu, L., Zhang, J., Chen, J. and Wu, G., 2023. Photonic millimeter-wave transfer with balanced dual-heterodyne phase noise detection and cancellation. Optics express, 31(17), pp.28078-28088.
25. Xie, K., Zuo, F., Hu, L., Chen, J. and Wu, G., 2024. Joint time and frequency transfer through one International Telecommunication Union 100 GHz wavelength division multiplexing channel with commercial devices. Optics Letters, 49(4), pp.875-878.
26. Xie, K., Zuo, F., Hu, L., Chen, J. and Wu, G., 2024. Detecting and Locating Nonreciprocal Links Based on the Correlation of Routes in Time Transfer Networks. IEEE Transactions on Instrumentation and Measurement, 73, pp.1-8.
27. Qiu, Z., Li, R., Hu, L., Wu, G. and Chen, J., 2024. Optically synchronized unidirectional optical amplifier-based coherent optical fiber links. Optics Letters, 49(10), pp.2761-2764.