ELECTROMAGNETISM, OPTICS, ACOUSTICS, HEAT TRANSFER, CLASSICAL MECHANICS, AND FLUID DYNAMICS |
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Laser frequency offset-locking using electromagnetically induced transparency spectroscopy of 85Rb in magnetic field |
Han-Mu Wang(王汉睦)1,2, Hong Cheng(成红)1,2, Shan-Shan Zhang(张珊珊)1,2, Pei-Pei Xin(辛培培)1,2, Zi-Shan Xu(徐子珊)1,2, Hong-Ping Liu(刘红平)1,2 |
1 State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Wuhan Institute of Physics and Mathematics, Chinese Academy of Sciences, Wuhan 430071, China;
2 University of Chinese Academy of Sciences, Beijing 100049, China |
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Abstract We have experimentally offset-locked the frequencies of two lasers using electromagnetically induced transparency (EIT) spectroscopy of 85Rb vapor with a buffer gas in a magnetic field at room temperature. The magnetic field is generated by a permanent magnet mounted on a translation stage and its field magnitude can be varied by adjusting the distance between the magnet and Rb cell, which maps the laser locking frequency to the space position of the magnet. This frequency-space mapping technique provides an unambiguous daily laser frequency detuning operation with high accuracy. A repeatability of less than 0.5 MHz is achieved with the locking frequency detuned up to 184 MHz when the magnetic field varies from 0 up to 80 G.
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Received: 22 January 2018
Revised: 07 May 2018
Accepted manuscript online:
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PACS:
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42.50.Gy
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(Effects of atomic coherence on propagation, absorption, and Amplification of light; electromagnetically induced transparency and Absorption)
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32.60.+i
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(Zeeman and Stark effects)
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32.10.Fn
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(Fine and hyperfine structure)
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32.80.Xx
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(Level crossing and optical pumping)
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Fund: Project supported by the National Key Basic Research Program of China (Grant No. 2013CB922003) and the National Natural Science Foundation of China (Grant Nos. 91421305, 91121005, and 11174329). |
Corresponding Authors:
Hong-Ping Liu
E-mail: liuhongping@wipm.ac.cn
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Cite this article:
Han-Mu Wang(王汉睦), Hong Cheng(成红), Shan-Shan Zhang(张珊珊), Pei-Pei Xin(辛培培), Zi-Shan Xu(徐子珊), Hong-Ping Liu(刘红平) Laser frequency offset-locking using electromagnetically induced transparency spectroscopy of 85Rb in magnetic field 2018 Chin. Phys. B 27 094205
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[1] |
Hau L V, Harris S E, Dutton Z and Behroozi C H 1999 Nature 397 594
|
[2] |
Wu H, Xiao M and Gea-Banacloche J 2008 Phys. Rev. A 78 041802
|
[3] |
Zibrov A S, Lukin M D, Nikonov D E, Hollberg L, Scully M O, Velichansky V L and Robinson H G 1995 Phys. Rev. Lett. 75 1499
|
[4] |
Mompart J and Corbalán R 2000 J. Opt. B 2 R7
|
[5] |
Guo T, Deng K, Chen X and Wang Z 2009 Appl. Phys. Lett. 94 151108
|
[6] |
Vanier J 2005 Appl. Phys. B 81 421
|
[7] |
Filtz J R, Danet J M, Kozlova O, Yun P, Guérande S, Clercq de E, Larquier B, Claudel P and Favreau J O 2014 EPJ. Web Conf. 77 00017
|
[8] |
Zhuang Y X, Shi D T, Li D W, Wang Y G, Zhao X N, Zhao J Y and Wang Z 2016 Chin. Phys. Lett. 33 040601
|
[9] |
Buchkremer F B J, Dumke R, Buggle C, Birkl G and Ertmer W 2000 Rev. Sci. Instrum. 71 3306
|
[10] |
Kasevich M, Weiss D S, Riis E, Moler K, Kasapi S and Chu S 1991 Phys. Rev. Lett. 66 2297
|
[11] |
Feng P and Walker T 1995 Am. J. Phys. 63 905
|
[12] |
Yim S H, Lee S B, Kwon T Y and Park S E 2014 Appl. Phys. B 115 491
|
[13] |
Schünemann U, Engler H, Grimm R, Weidemüller M and Zielonkowski M 1999 Rev. Sci. Instrum. 70 242
|
[14] |
Seymour-Smith N, Blythe P, Keller M and Lange W 2010 Rev. Sci. Instrum. 81 075109
|
[15] |
Bohlouli-Zanjani P, Afrousheh K and Martin J D D 2006 Rev. Sci. Instrum. 77 093105
|
[16] |
Jiao Y, Li J, Wang L, Zhang H, Zhang L, Zhao J and Jia S 2016 Chin. Phys. B 25 053201
|
[17] |
Bell S C, Heywood D M, White J D, Close J D and Scholten R E 2007 Appl. Phys. Lett. 90 171120
|
[18] |
Moon H S, Lee L, Kim K and Kim J B 2004 Appl. Phys. Lett. 84 3001
|
[19] |
Yang G Q, Xu Y F, Lin Q and Zhang H 2013 Chin. Opt. Lett. 11 100201
|
[20] |
Sarkisyan D, Sargsyan A, Keaveney J and Adams C S 2014 J. Exp. Theor. Phys. 119 8
|
[21] |
Sargsyan A, Mirzoyan R and Sarkisyan D 2012 JETP Lett. 96 303
|
[22] |
Cheng H, Wang H M, Zhang S S, Xin P P, Luo J and Liu H P 2017 J. Phys. B 50 095401
|
[23] |
Cheng H, Wang H M, Zhang S S, Xin P P, Luo J and Liu H P 2017 Chin. Phys. B 26 074204
|
[24] |
Brandt S, Nagel A, Wynands R and Meschede D 1997 Phys. Rev. A 56 R1063
|
[25] |
Nikolić S N, Radonjić M, Krmpot A J, Lučić N M, Zlatković B V and Jelenković B M 2013 J. Phys. B 46 075501
|
[26] |
Sargsyan A, Sarkisyan D and Papoyan A 2006 Phys. Rev. A 73 033803
|
[27] |
Jiang X, Zhang H and Wang Y 2016 Chin. Phys. B 25 034204
|
[28] |
Sargsyan A D, Mirzoyan R K, Sarkisyan A S, Amiryan A H and Sarkisyan D H 2014 J. Contemp. Phys.(Armenian Ac. Sci.) 49 20
|
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