Pico-watt and femto-watt weak-light phase locking

被引:34
|
作者
Liao, AC [1 ]
Ni, WT [1 ]
Shy, JT [1 ]
机构
[1] Natl Tsing Hua Univ, Dept Phys, Hsinchu 30055, Taiwan
来源
关键词
D O I
10.1142/S021827180200258X
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Advances in laser physics and its applications have triggered the proposition and development of Laser Astrodynamics. In carrying out research projects on Laser Space Programs, it is necessary to process the laser signal sent back from remote spacecraft. After traveling an extremely long distance, the power of this signal is greatly reduced. Weak-fight phase-locking is the key technique used for signal amplification in these space projects. After the returning laser beam is collected by telescope, it is used to phase-lock a local laser oscillator. The local laser then carries the phase information of the remote spacecraft laser. We used diode-pumped non-planar ring cavity Nd:YAG lasers to serve as the remote weak-light laser and the local strong-light laser. We then built an optical phase-locked loop to phase-lock them. The weak-light laser signal was simulated using ND (neutral density)-filters to decrease the fight intensity. In the phase detection, we used balanced detection to eliminate laser intensity noise and improve the SIN ratio. Combining this with an appropriate loop filter, we were able to control the laser frequency and improve the phase-locking ability. We phase-locked a 2 nW weak-light beam and a 2 mW strong-fight beam with a 57 mrads (rms) phase error. The locking duration was very long. Locking of a 200 pW and a 200 muW light beam, with phase error of 200 mrad (rms) and duration of over 2 hours was achieved. The phase error for locking a 200 muW to a 20 pW light beam was 160 mrad (rms). The locking duration was also longer than 2 hours. The last locking performed was carried out with a 2 pW and a 200 muW light beam. The phase error and the locking duration were 290 mrad (rms) and 1.5 min respectively.
引用
收藏
页码:1075 / 1085
页数:11
相关论文
共 25 条
  • [21] Phase-controlled optical switching and slow- and weak-light solitons in a coherent molecular system with permanent dipole moments
    Du, Qiong
    Hang, Chao
    Huang, Guoxiang
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2014, 31 (03) : 594 - 602
  • [22] Low-temperature architecture of a cubic-phase CsPbBr3 single crystal for ultrasensitive weak-light photodetectors
    Wei, Xiangfeng
    Liu, Han
    Zhang, Zhixiang
    Xu, Wenchao
    Huang, Wenjun
    Luo, Lin-Bao
    Liu, Jiehua
    CHEMICAL COMMUNICATIONS, 2021, 57 (63) : 7798 - 7801
  • [23] High-precision digital optical phase locking for 10-12 W order weak light for a spaceborne gravitational wave interferometer
    Mu, Henglin
    Le, Taoran
    Xu, Xin
    Tan, Yidong
    Wei, Haoyun
    Li, Yan
    APPLIED OPTICS, 2023, 62 (20) : 5494 - 5501
  • [24] Progress in laboratory R & D for fundamental physics space missions - weak light phase-locking, fibre-linked heterodyne interferometry, fibre delay line and picometre real-time motion control
    Ni, W.-T.
    Pan, S.-S.
    Peng, G.-S.
    Shy, J.-T.
    Classical and Quantum Gravity, 13 (11/A):
  • [25] Progress in laboratory R&D for fundamental physics space missions - Weak light phase-locking, fibre-linked heterodyne interferometry, fibre delay line and picometre real-time motion control
    Ni, WT
    Pan, SS
    Peng, GS
    Shy, JT
    Tseng, SM
    Tsao, SL
    Wang, SE
    Wu, JS
    Wu, SA
    Yeh, HC
    CLASSICAL AND QUANTUM GRAVITY, 1996, 13 (11A) : A311 - A315