Infrared and Laser Engineering, Volume. 50, Issue 3, 20200289(2021)
Laser frequency stabilization technology using temperature control and iodine absorption cell technology
[1] Gao Jian, Zhou Anran, Sun Dongsong, . An identification method of seed laser injection in Doppler lidar[J]. Infrared and Laser Engineering, 47, 0230001(2018).
[4] Ma Fumin, Cheng Yong, Yang Zehou, . Latest development of laser Doppler wind measurement tecnology[J]. Laser & Optoelectronics Progress, 56, 180003(2019).
[6] Guo Wenjie, Yan Zhaoai, Hu Xiong, . Long-term frequency stabilization system in 532 nm wind lidar[J]. Infrared and Laser Engineering, 45, S130004(2016).
[7] Wang Guocheng, Zhang Feifei, Qian Zhengxiang, . Frequency stabilization method in direct detection Doppler wind lidar under field experiment conditions[J]. Infrared and Laser Engineering, 45, 0906004(2016).
[8] Dong Junfa, Liu Jiqiao, Bi Decang, et al. Optimal iodine absorption line applied for spaceborne high spectral resolution lidar[J]. Applied Optics, 57, 5413(2018).
[9] Yan Qing, Yuan Meng, He Tiantian, . Pulse laser frequency locking method based on molecular aborption[J]. Acta Optica Sinica, 39, 1028005(2019).
[10] Baumgarten G, Fiedler J, Hildebrand J, et al. Inertia gravity wave in the stratosphere and mesosphere observed by Doppler wind and temperature lidar[J]. Geophysical Research Letters, 42, 10929-10936(2015).
Get Citation
Copy Citation Text
Lu Li, Peng Zhuang, Chenbo Xie, Bangxin Wang, Kunming Xing. Laser frequency stabilization technology using temperature control and iodine absorption cell technology[J]. Infrared and Laser Engineering, 2021, 50(3): 20200289
Category: Special issue—Lidar
Received: Nov. 15, 2020
Accepted: --
Published Online: Jul. 15, 2021
The Author Email: