Study on Linewidth and Phase Noise Characteristics of a Narrow Linewidth External Cavity Diode Laser
Author:
Hu Sheng12, Lv Puchu12, Guan Chenggang13, Li Shasha12, Qin Haixin12, Li Xiaoqiang1, Chen Xuan12, Zhan Linfeng1, Wang Weiqi1, Xiao Yifan1, Wu Minghu2
Affiliation:
1. Laboratory of Optoelectronics and Sensor (OES Lab), School of Science, Hubei University of Technology, Wuhan 430068, China 2. School of Electrical and Electronics Engineering, Hubei University of Technology, Wuhan 430068, China 3. AOV Energy LLC, Wuhan 430068, China
Abstract
In the field of inter-satellite laser communication, achieving high-quality communication and compensating for the Doppler frequency shift caused by relative motion necessitate lasers with narrow linewidths, low phase noise, and the ability to achieve mode-hop-free tuning within a specific range. To this end, this paper investigates a novel external cavity diode laser (ECDL) with a frequency-selective F-P etalon structure, leveraging the external cavity F-P etalon structure in conjunction with an auxiliary filter to achieve single longitudinal mode selection. The laser undergoes linewidth testing using a delayed self-heterodyne beating method, followed by the testing of its phase noise and frequency noise characteristics using a noise analyzer, yielding beat spectra and noise power spectral density profiles. Furthermore, the paper introduces an innovative bidirectional temperature-scanning laser method to achieve optimal laser-operating point selection and mode-hop-free tuning. The experimental results showcase that the single longitudinal mode spectral side-mode suppression ratio (SMSR) is around 70 dB, and the output power exceeds 10 mW. Enhancing the precision of the F-P etalon leads to a more pronounced suppression of low-frequency phase noise, reducing the Lorentzian linewidth from the initial 10 kHz level to a remarkable 5 kHz level. The bidirectional temperature-scanning laser method not only allows for the selection of the optimal operating point but also enables mode-hop-free tuning within 160 pm.
Funder
Natural Science Foundation of Hubei Province Science and Technology Project of Hubei Province
Reference29 articles.
1. Jia, Q., Li, C., Liu, L., Chen, T., and Cao, G. (2021, January 1–4). Acquisition, Scanning and Control Technology for Inter-satellite Laser Communication. Proceedings of the 2021 IEEE 16th Conference on Industrial Electronics and Applications (ICIEA), Chengdu, China. 2. Peng, C., and Cen, F. (2021, January 28–30). Research on inter-satellite laser communication based on relay system. Proceedings of the International Conference on Laser, Optics and Optoelectronic Technology (LOPET 2021), Xi’an, China. 3. Research on simulation methods for Doppler frequency shift of a coherent inter-satellite laser link in a ground test system;Zhang;Infrared Phys. Technol.,2021 4. A comprehensive review on the development and applications of narrow-linewidth lasers;Bai;Microw. Opt. Technol. Lett.,2021 5. Ding, K., Ma, Y., Wei, L., Li, X., Shi, J., Li, Z., Qu, Y., Li, L., Qiao, Z., and Liu, G. (2022). Research on Narrow Linewidth External Cavity Semiconductor Lasers. Crystals, 12.
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