功率比可调连续波Tm,Ho:(LLF/YLF)双波长激光器
Continuous Dual-Wavelength Tm,Ho:(LLF/YLF) Laser with Widely Tunable Power Ratio
DOI: 10.12677/jsta.2024.124061, PDF,   
作者: 纪晓博*, 张新陆:天津工业大学物理科学与技术学院,天津
关键词: TmHo共掺氟化物双波长激光器固体激光器TmHo Co-Doped Fluoride Dual-Wavelength Laser Solid-State Laser
摘要: 采用激光二极管端面泵浦Tm-Ho共掺的LLF和YLF双增益介质,实现2055 nm和2053 nm连续波双波长激光输出。在吸收泵浦功率为1.78 W时,该激光器获得最大的双波长总输出功率565 mW,斜率效率为38.0%。并且通过改变泵浦光斑束腰在增益介质中的轴向位置,两个波长的输出功率比可以在大范围内连续调谐。并且还实现了2055 nm和2053 nm单波长的激光输出。
Abstract: The laser diode end-pumped continuous wave dual-wavelength laser output at 2055 nm and 2053 nm is achieved by using Tm-Ho codoped LLF and YLF dual gain media. By changing the positions of the pump spot waist in the gain media, the output power ratio of two wavelengths can be continuously tuned over a wide range. At the absorbed pump power of 1.78 W, the maximum dual-wavelength total output power was 565 mW, corresponding to a slope efficiency of 38.0%. Furthermore, 2055 nm or 2053 nm single wavelength laser is also realized.
文章引用:纪晓博, 张新陆. 功率比可调连续波Tm,Ho:(LLF/YLF)双波长激光器[J]. 传感器技术与应用, 2024, 12(4): 564-569. https://doi.org/10.12677/jsta.2024.124061

参考文献

[1] Son, S.N., Song, J., Kang, J.U. and Kim, C. (2011) Simultaneous Second Harmonic Generation of Multiple Wavelength Laser Outputs for Medical Sensing. Sensors, 11, 6125-6130. [Google Scholar] [CrossRef] [PubMed]
[2] Zhang, S., Tan, Y. and Li, Y. (2010) Orthogonally Polarized Dual Frequency Lasers and Applications in Self-Sensing Metrology. Measurement Science and Technology, 21, Article 054016. [Google Scholar] [CrossRef
[3] Chang, F.L., Sung, C.L., Huang, T.L., Wu, T.W., Cho, H.H., Liang, H.C., et al. (2017) Dual-Central-Wavelength Passively Mode-Locked Diffusion-Bonded Nd:YVO4/Nd:GdVO4 Laser with a Semiconductor Saturable Absorber Mirror. Laser Physics Letters, 14, Article 085803. [Google Scholar] [CrossRef
[4] Huang, Y.J., Cho, H.H., Tzeng, Y.S., Liang, H.C., Su, K.W. and Chen, Y.F. (2015) Efficient Dual-Wavelength Diode-End-Pumped Laser with a Diffusion-Bonded Nd:YVO4/Nd:GdVO4 Crystal. Optical Materials Express, 5, 2136-2141. [Google Scholar] [CrossRef
[5] Wang, Y., Dai, T., Liu, X., Ju, Y. and Yao, B. (2019) Dual-Wavelength Injection-Seeded Q-Switched Ho:YLF Laser for CO2 Differential Absorption Lidar Application. Optics Letters, 44, 6049-6052. [Google Scholar] [CrossRef] [PubMed]
[6] Iwai, H. and Aoki, M. (2023) Evaluation of a Coherent 2-µm Differential Absorption Lidar for Water Vapor and Radial Wind Velocity Measurements. Optics Express, 31, 13817-13836. [Google Scholar] [CrossRef] [PubMed]
[7] Qi, J., Liu, C., Dai, C., Liu, L. and Wang, X. (2019) Orthogonally Polarized Dual-Wavelength Laser Based Totally on Intrinsic Birefringence of the Gain Crystal. Laser Physics, 29, Article 115001. [Google Scholar] [CrossRef
[8] Tu, Z., Dai, S., Chen, M., Yin, H., Zhu, S., Li, Z., et al. (2020) High-Peak-Power Eye-Safe Orthogonally-Polarized Dual-Wavelength Nd:YLF/KGW Raman Laser. Optics Express, 28, 8802-8810. [Google Scholar] [CrossRef] [PubMed]
[9] 钟凯, 张献中, 徐德刚, 等. 全固态双波长激光器研究进展(特邀) [J]. 光电技术应用, 2022, 37(4): 13-26, 78.
[10] Zhang, Y., Hu, M., Xu, M., Yan, H., Liu, C., Chen, L., et al. (2022) A Power Balanced Dual-Wavelength Nd:GdVO4 Laser with 0.6 THz Frequency Separation. IEEE Photonics Journal, 14, 1-6. [Google Scholar] [CrossRef
[11] Liang, H., Huang, T., Chang, F., Sung, C. and Chen, Y. (2018) Flexibly Controlling the Power Ratio of Dual-Wavelength SESAM-Based Mode-Locked Lasers with Wedged-Bonded Nd:YVO4/Nd:GdVO4 Crystals. IEEE Journal of Selected Topics in Quantum Electronics, 24, 1-5. [Google Scholar] [CrossRef
[12] Nadimi, M., Onyenekwu, C. and Major, A. (2020) Continuous-Wave Dual-Wavelength Operation of the in-Band Diode-Pumped Nd:GdVO4/Nd:YVO4 Composite Laser with Controllable Spectral Power Ratio. Applied Physics B, 126, Article No. 75. [Google Scholar] [CrossRef
[13] Bodrov, S.B., Ilyakov, I.E., Shishkin, B.V. and Bakunov, M.I. (2019) Highly Efficient Cherenkov-Type Terahertz Generation by 2-µm Wavelength Ultrashort Laser Pulses in a Prism-Coupled LiNbO3 Layer. Optics Express, 27, 36059-36065. [Google Scholar] [CrossRef] [PubMed]
[14] Mei, J., Zhong, K., Wang, M., Liu, Y., Xu, D., Shi, W., et al. (2016) Widely-Tunable High-Repetition-Rate Terahertz Generation in GaSe with a Compact Dual-Wavelength KTP OPO around 2µm. Optics Express, 24, 23368-23375. [Google Scholar] [CrossRef] [PubMed]
[15] Yan, D., Wang, Y., Xu, D., Liu, P., Yan, C., Shi, J., et al. (2017) High-Average-Power, High-Repetition-Rate Tunable Terahertz Difference Frequency Generation with GaSe Crystal Pumped by 2 µm Dual-Wavelength Intracavity KTP Optical Parametric Oscillator. Photonics Research, 5, 82-87. [Google Scholar] [CrossRef