Chinese Optics Letters, 2021, 19 (8): 083001, Published Online: Jul. 19, 2021   

VIPA-based two-component detection for a coherent population trapping experiment Download: 754次

Author Affiliations
1 College of Science, Zhejiang University of Technology, Hangzhou 310023, China
2 Department of Physics, Zhejiang University, Hangzhou 310027, China
3 Key Laboratory of Quantum Optics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
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Aihua Deng, Zixuan Zeng, Jianliao Deng. VIPA-based two-component detection for a coherent population trapping experiment[J]. Chinese Optics Letters, 2021, 19(8): 083001.

References

[1] G. Alzetta, A. Gozzini, L. Moi, G. Orriols. An experimental method for the observation of RF transitions and laser beat resonances in oriented Na vapour. Nuovo Cimento B, 1976, 36: 5.

[2] E. Arimondo. Coherent population trapping in laser spectroscopy. Prog. Opt., 1996, 35: 257.

[3] K. Bergmann, H. Theuer, B. W. Shore. Coherent population transfer among quantum states of atoms and molecules. Rev. Mod. Phys., 1998, 70: 1003.

[4] M. Stahler, R. Wynands, S. Knappe, J. Kitching, L. Hollberg, A. Taichenachev, V. Yudin. Coherent population trapping resonances in thermal 85Rb vapor: D1 versus D2 line excitation. Opt. Lett., 2002, 27: 1472.

[5] F.-X. Esnault, E. Blanshan, E. N. Ivanov, R. E. Scholten, J. Kitching, E. A. Donley. Cold-atom double-coherent population trapping clock. Phys. Rev. A, 2013, 88: 042120.

[6] L. V. Hau, S. E. Harris, Z. Dutton, C. H. Behroozi. Light speed reduction to 17 metres per second in an ultracold atomic gas. Nature, 1999, 397: 594.

[7] C. Santori, D. Fattal, S. M. Spillane, M. Fiorentino, R. G. Beausoleil, A. D. Greentree, P. Olivero, M. Draganski, J. R. Rabeau, P. Reichart, B. C. Gibson, S. Rubanov, D. N. Jamieson, S. Prawer. Coherent population trapping in diamond N-V centers at zero magnetic field. Opt. Express, 2006, 14: 7986.

[8] J. Kitching, L. Hollberg, S. Knappe, R. Wynands. Compact atomic clock based on coherent population trapping. IEEE Xplore, 2001, 37: 1449.

[9] J. Vanier. Atomic clocks based on coherent population trapping: a review. Appl. Phys. B, 2005, 81: 421.

[10] DeNataleJ. F.BorwickR. L.TsaiC.StuparP. A.LinY.NewgardR. A.BerquistR. W.ZhuM., “Compact, low-power chip-scale atomic clock,” in 2008 IEEE/ION Position, Location and Navigation Symposium (2008), p. 67.

[11] V. Shah, J. Kitching. Advances in coherent population trapping for atomic clocks. Adv. At. Mol. Opt. Phys., 2010, 59: 21.

[12] Y. Sun, Y. Yao, Y. Hao, H. Yu, Y. Jiang, L. Ma. Laser stabilizing to ytterbium clock transition with Rabi and Ramsey spectroscopy. Chin. Opt. Lett., 2020, 18: 070201.

[13] X. Wang, K. Liu, H. Cheng, W. Ren, J. Xiang, J. Ji, X. Peng, Z. Zhang, J. Zhao, M. Ye, L. Li, T. Li, B. Wang, Q. Qu, L. Liu, D. Lu. Optimization of temperature characteristics of a transportable 87Rb atomic fountain clock. Chin. Opt. Lett., 2019, 17: 080201.

[14] K. Motomura, T. Koshimizu, K. I. Harada, H. Ueno, M. Mitsunaga. Subkilohertz linewidths measured by heterodyne-detected coherent population trapping in sodium vapor. Opt. Lett., 2004, 29: 1141.

[15] M. Rosenbluh, V. Shah, S. Knappe, J. Kitching. Differentially detected coherent population trapping resonances excited by orthogonally polarized laser fields. Opt. Express, 2006, 14: 6588.

[16] S. A. Diddams, L. Hollberg, V. Mbele. Molecular fingerprinting with the resolved modes of a femtosecond laser frequency comb. Nature, 2007, 445: 627.

[17] A. Klose, G. Ycas, F. C. Cruz, D. L. Maser, S. A. Diddams. Rapid, broadband spectroscopic temperature measurement of CO using VIPA spectroscopy. Appl. Phys. B, 2016, 122: 78.

[18] Z. Meng, V. V. Yakovlev. Precise determination of Brillouin scattering spectrum using a virtually imaged phase array (VIPA) spectrometer and charge-coupled device (CCD) camera. Appl. Spec., 2016, 70: 1356.

[19] G. Scarcelli, S. H. Yun. Multistage VIPA etalons for high-extinction parallel Brillouin spectroscopy. Opt. Express, 2011, 19: 10913.

[20] M. J. Thorpe, F. Adler, K. C. Cossel, M. H. G. de Miranda, J. Ye. Tomography of a supersonically cooled molecular jet using cavity-enhanced direct frequency comb spectroscopy. Chem. Phys. Lett., 2009, 468: 1.

[21] M. J. Thorpe, D. Balslev-Clausen, M. S. Kirchner, J. Ye. Cavity-enhanced optical frequency comb spectroscopy: application to human breath analysis. Opt. Express, 2008, 16: 2387.

[22] H. Lin, J. Deng, J. Lin, S. Zhang, Y. Wang. Frequency stability of a pulsed optically pumped atomic clock with narrow Ramsey linewidth. Appl. Opt., 2018, 57: 3056.

[23] J. Lin, J. Deng, Y. Ma, H. He, Y. Wang. Detection of ultrahigh resonance contrast in vapor-cell atomic clocks. Opt. Lett., 2012, 37: 5036.

[24] Y. Ma, J. Deng, Z. Hu, H. He, Y. Wang. High contrast transparent Ramsey fringes using microwave pulses interaction with atomic coherent state in warm rubidium vapor. Chin. Opt. Lett., 2013, 11: 032701.

[25] B. Yan, Y. Ma, Y. Wang. Formation of Ramsey fringes based on pulsed coherent light storage. Phys. Rev. A, 2009, 79: 063820.

[26] T. Xiao, T. Wang, B. Yan. A simple magnetic field design for dichroic atomic vapor laser lock. Rev. Sci. Instrum., 2018, 89: 046106.

[27] M. Shirasaki. Large angular dispersion by a virtually imaged phased array and its application to a wavelength demultiplexer. Opt. Lett., 1996, 21: 366.

Aihua Deng, Zixuan Zeng, Jianliao Deng. VIPA-based two-component detection for a coherent population trapping experiment[J]. Chinese Optics Letters, 2021, 19(8): 083001.

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