• Acta Optica Sinica
  • Vol. 34, Issue 5, 530002 (2014)
Han Yashuai*, Wen Xin, Bai Jiandong, He Jun, and Wang Junmin
Author Affiliations
  • [in Chinese]
  • show less
    DOI: 10.3788/aos201434.0530002 Cite this Article Set citation alerts
    Han Yashuai, Wen Xin, Bai Jiandong, He Jun, Wang Junmin. Laser Frequency Stabilization of 1560 nm Laser after Frequency Doubling to 780 nm with a Waveguide: Radio-Frequency Frequency-Modulation Spectroscopy versus Modulation Transfer Spectroscopy with Rb Atoms[J]. Acta Optica Sinica, 2014, 34(5): 530002 Copy Citation Text show less
    References

    [1] H Sasada, O Kubota. Frequency of lamb-dip-stabilized 1.52 μm He-Ne lasers [J]. Appl Phys B, 1992, 55(2): 186-188.

    [2] Labachelerie M de, K Nakagawa, Y Awaji, et al.. High-frequency-stability laser at 1.5 μm using Doppler-free molecular line [J]. Opt Lett, 1995, 20(6): 572-574.

    [3] Y Awaji, K Nakagawa, Labachelerie M de, et al.. Optical frequency measurement of the H12C14N Lamb-dip-stabilized 1.5-μm diode laser [J]. Opt Lett, 1995, 20(19): 2024-2026.

    [4] C S Edward, H S Margolis, G P Barwood, et al.. High-accuracy frequency atlas of 13C2H2 in the 1.5 μm region [J]. Appl Phys B, 2005, 80(8): 977-983.

    [5] K Nakagawa, Y Sato, M Musha, et al.. Modulation-free acetylene-stabilized lasers at 1542 nm using modulation transfer spectroscopy [J]. Appl Phys B, 2005, 80(4-5): 479-482.

    [6] S Masuda, A Seki, S Niki, et al.. Optical frequency standard by using a 1560 nm diode laser locked to saturated absorption lines of rubidium vapor [J]. Appl Opt, 2007, 46(21): 4780-4785.

    [7] H C Chui, Y W Liu, J T Shy, et al.. Frequency-stabilized 1520-nm diode laser with rubidium 5S1/2→7S1/2 two-photon absorption [J]. Appl Opt, 2004, 43(34): 6348-6351.

    [8] M Poulin, C Latrasse, N Cyr, et al.. An absolute frequency reference at 192.6 THz (1556 nm) based on a two-photon absorption line of rubidium at 778 nm for WDM communication systems [J]. IEEE Photon Tech Lett, 1997, 9(12): 1631-1633.

    [9] C Wieman, M D Levenson, A L Schawlow. Complete hyperfine structure of a molecular iodine line [J]. Phys Rev Lett, 1971, 26(16): 946-949.

    [10] Meng Tengfei, Wu Yuelong, Ji Zhonghua, et al.. Frequency stabilized diode laser based on cesium molecular saturated absorption spectroscopy [J]. Chinese J Lasers, 2010, 37(5): 1182-1185.

    [11] C Wieman, T W Hansch. Doppler-free laser polarization spectroscopy [J]. Phys Rev Lett, 1976, 36(20): 1170-1173.

    [12] Ma Jie, Zhao Yanting, Zhao Jianming, et al.. Frequency stabilization of an external cavity diode laser using polarization spectroscopy without frequency modulation [J]. Chinese J Lasers, 2005, 32(12): 1605-1608.

    [13] Wang Jing, Yang Baodong, He Jun, et al.. Influence of the bandwidth of feedback loop in frequency stabilization of external-cavity diode laser by polarization spectroscopy [J]. Acta Optica Sinica, 2009, 29(2): 425-430.

    [14] J Zhang, D Wei, C D Xie, et al.. Characteristics of absorption and dispersion for rubidium D2 lines with the modulation transfer spectrum [J]. Opt Express, 2003, 11(11): 1338-1344.

    [15] V Negnevitsky, L D Turner. Wideband laser locking to an atomic reference with modulation transfer spectroscopy [J]. Opt Express, 2013, 21(3): 3103-3113.

    [16] R K Raj, D Bloch, J J Snyder, et al.. High-frequency optically heterodyned saturation spectroscopy via resonant degenerate four-wave mixing [J]. Phys Rev Lett, 1980, 44(19): 1251-1254.

    [17] D Bloch, R K Raj, K S Peng, et al.. Dispersive character and directional anisotropy of saturated susceptibilities in resonant backward four-wave-mixing [J]. Phys Rev Lett, 1982, 49(10): 719-722.

    CLP Journals

    [1] Fan Xialei, Jin Shangzhong, Zhang Shu, Li Ye, Lin Yige, Fang Zhanjun. Active Suppression of Residual Amplitude Modulation in Laser Frequency Stabilization by Multi-Frequency Mixing[J]. Chinese Journal of Lasers, 2016, 43(4): 402001

    [2] Yu Qi, Xiong Wei, Zhang Yin, Chen Xuzong, Duan Xiaohui. Design and Implementation of Miniaturized Frequency-Stabilized Laser System with Low Power Consumption[J]. Chinese Journal of Lasers, 2016, 43(8): 801010

    [3] Fang Yinfei, Xu Liang, Dai Dapeng, Li Xingjia, Du Xiangli, Yin Yanning, Zhang Hui, Xia Yong, YinJianping. Calculation of Vibronic and Rotational Spectrum in the Electric Ground and Excited State of Magnesium Fluoride Molecule[J]. Acta Optica Sinica, 2015, 35(1): 102002

    Han Yashuai, Wen Xin, Bai Jiandong, He Jun, Wang Junmin. Laser Frequency Stabilization of 1560 nm Laser after Frequency Doubling to 780 nm with a Waveguide: Radio-Frequency Frequency-Modulation Spectroscopy versus Modulation Transfer Spectroscopy with Rb Atoms[J]. Acta Optica Sinica, 2014, 34(5): 530002
    Download Citation