|
|
High-performance coherent population trapping clock based on laser-cooled atoms |
Xiaochi Liu(刘小赤)1,†, Ning Ru(茹宁)1, Junyi Duan(段俊毅)1, Peter Yun(云恩学)2, Minghao Yao(姚明昊)1,3, and Jifeng Qu(屈继峰)1 |
1 Center for Advanced Measurement Science, National Institute of Metrology, Beijing 100029, China; 2 National Time Service Center, Chinese Academy of Sciences, Xi'an 710600, China; 3 College of Metrology and Measurement Engineering, China Jiliang University, Hangzhou 310018, China |
|
|
Abstract We present a coherent population trapping clock system based on laser-cooled $^{87}$Rb atoms. The clock consists of a frequency-stabilized CPT interrogation laser and a cooling laser as well as a compact magneto-optical trap, a high-performance microwave synthesizer, and a signal detection system. The resonance signal in the continuous wave regime exhibits an absorption contrast of $\sim 50$%. In the Ramsey interrogation method, the linewidth of the central fringe is 31.25 Hz. The system achieves fractional frequency stability of ${2.4\times }{{10}}^{{-11}}/\sqrt \tau $, which goes down to ${1.8\times }{{10}}^{{-13}}$ at 20000 s. The results validate that cold atom interrogation can improve the long-term frequency stability of coherent population trapping clocks and holds the potential for developing compact/miniature cold atoms clocks.
|
Received: 31 August 2021
Revised: 27 September 2021
Accepted manuscript online: 06 October 2021
|
PACS:
|
32.30.-r
|
(Atomic spectra?)
|
|
Fund: We are grateful to Lin Dan and Qiang Hao for their fruitful discussions. This work was supported by the National Natural Science Foundation of China (Grant No. 61975194). |
Corresponding Authors:
Xiaochi Liu
E-mail: liuxch@nim.ac.cn
|
Cite this article:
Xiaochi Liu(刘小赤), Ning Ru(茹宁), Junyi Duan(段俊毅), Peter Yun(云恩学), Minghao Yao(姚明昊), and Jifeng Qu(屈继峰) High-performance coherent population trapping clock based on laser-cooled atoms 2022 Chin. Phys. B 31 043201
|
[1] Alzetta G, Gozzini A, Moi L and Orriols G 1976 Nuovo Cimento B 36 5 [2] Arimondo E 1996 Prog. Opt. 35 257 [3] Vanier J 2005 Appl. Phys. B 81 421 [4] Knappe S, Shah V, Schwindt P D D, Hollberg L, Kitching J, Liew L A and Moreland J 2004 Appl. Phys. Lett. 85 1460 [5] Lutwak R, Vlitas P, Varghese M, Mescher M, Serkland D K and Peake G M 2005 Proceedings of the 2005 IEEE International Frequency Control Symposium and Exposition, August 29-31, 2005, Vancouver, BC, Canada, p. 6 [6] CSAC specifications at www.microsemi.com (2019) [7] Cash P, Krzewick W, Machado P, Overstreet K R, Silveira M, Stanczyk M, Taylor D and Zhang X 2018 uropean Frequency and Time Forum (EFTF), April 10-12, 2018, Turin, Italy, pp. 65-71 [8] Danet J M, Lours M, Guérandel S and de Clercq E 2014 IEEE Trans. Ultrason. Ferroelectr. Freq. Control 61 567 [9] Yun P, Tricot F, Calosso C E, Micalizio S, Francois B, Boudot R, Guérandel S and de Clercq E 2017 Phys. Rev. Appl. 7 014018 [10] Hafiz M, Coget G, Yun P, Guérandel S, de Clercq E and Boudot R 2017 J. Appl. Phys. 121 104903 [11] Zhu M and Cutler L S 2000 Proceedings of the 32th Annual Precise Time and Time Interval Systems and Applications Meeting, November 28-30, 2000, Reston, Virginia, pp. 311-324 [12] Hemmer P R, Shahriar M S, Natoli V D and Ezekiel S 1989 J. Opt. Soc. Am. B 6 1519 [13] Shahriar M S, Hemmer P R, Katz D P, Lee A and Prentiss M G 1997 Phys. Rev. A 55 2272 [14] Blanshan E, Rochester S M, Donley E A and Kitching J 2015 Phys. Rev. A 91 041401 [15] Liu X, Ivanov E, Yudin V I, Kitching J and Donley E A 2017 Phys. Rev. Appl. 8 054001 [16] Liu X, Yudin V I, Taichenachev A V, Kitching J and Donley E A 2017 Appl. Phys. Lett. 111 224102 [17] Pollock J W, Yudin V I, Shuker M, Basalaev M Yu, Taichenachev A V, Liu X, Kitching J and Donley E A 2018 Phys. Rev. A 98 053424 [18] Taichenachev A V, Yudin V I, Velichansky V L, Kargapoltsev S V, Wynands R, Kitching J and Hollberg L 2004 JETP Lett. 80 236 [19] Kargapoltsev S V, Kitching J, Hollberg L, Taichenachev A V, Velichansky V L and Yudin V I 2004 Laser Phys. Lett. 1 495 [20] Dick G J 1989 Proceedings of the 19th Annual Precise Time and Time Interval Systems and Applications Meeting, December 1987, Redondo Beach, California, pp. 133-147 [21] Caloss C E, Gozzelino M, Godone A, Lin H and Micalizio S 2020 IEEE Trans. Ultrason. Ferroelectr. Freq. Control 67 1074 [22] Audoin C, Canderlier V and Dimarcq N 1991 IEEE Trans. Instrum. Meas. 40 121 [23] Santarelli G, Audoin C, Makdissi A, Laurent P, Dick G J and Clairon A 1998 IEEE Trans. Ultrason. Ferroelect. Freq. Control 45 887 [24] Yao M, Duan J, Wang X, Han Q, Shi Y, Zhou K, Ru N, Yun P and Liu X 2021 IEEE Access 10 3177 [25] Nshii C C, Vangeleyn M, Cotter J P, Griffin P F, Hinds E A, Ironside C N, See P, Sinclair A G, Riis E and Arnold A S 2013 Nat. Nanotechnol. 8 321 [26] McGilligan J P, Griffin P F, Elvin R, Ingleby S J, Riis E and Arnold A S 2017 Sci. Rep. 7 384 [27] Vangeleyn M, Griffin P F, Riis E and Arnold A S 2009 Opt. Express 17 13601 [28] Vangeleyn M, Griffin P F, Riis E and Arnold A S 2010 Opt. Lett. 35 3453 |
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
Altmetric
|
blogs
Facebook pages
Wikipedia page
Google+ users
|
Online attention
Altmetric calculates a score based on the online attention an article receives. Each coloured thread in the circle represents a different type of online attention. The number in the centre is the Altmetric score. Social media and mainstream news media are the main sources that calculate the score. Reference managers such as Mendeley are also tracked but do not contribute to the score. Older articles often score higher because they have had more time to get noticed. To account for this, Altmetric has included the context data for other articles of a similar age.
View more on Altmetrics
|
|
|