Optics and Precision Engineering, Volume. 30, Issue 20, 2430(2022)
Picosecond pulsed near infrared supercontinuum laser
[1] F VANHOLSBEECK, S MARTIN-LOPEZ, M GONZÁLEZ-HERRÁEZ et al. The role of pump incoherence in continuous-wave supercontinuum generation. Optics Express, 13, 6615-6625(2005).
[2] Y M WANG, Y H ZHAO, J S NELSON et al. Ultrahigh-resolution optical coherence tomography by broadband continuum generation from a photonic crystal fiber. Optics Letters, 28, 182-184(2003).
[3] S Y SONG, Z L LI, Y H GAO et al. Swept source optical coherence tomography system for transdermal drug delivery imaging by microneedles. Chinese Journal of Lasers, 45(2018).
[4] P AGRAWALGOVIND. Nonlinear Fiber Optics. Nonlinear Science at the Dawn of the 21st Century, 195-211(2000).
[5] F FUTAMI, K KIKUCHI. Low-noise multiwavelength transmitter using spectrum-sliced supercontinuum generated from a normal group-velocity dispersion fiber. IEEE Photonics Technology Letters, 13, 73-75(2001).
[6] V V ALEXANDER, O P KULKARNI, M KUMAR et al. Modulation instability initiated high power all-fiber supercontinuum lasers and their applications. Optical Fiber Technology, 18, 349-374(2012).
[7] A K ABEELUCK, C HEADLEY. Supercontinuum growth in a highly nonlinear fiber with a low-coherence semiconductor laser diode. Applied Physics Letters, 85, 4863-4865(2004).
[8] [8] 8孙畅. 高功率白光超连续谱光纤激光及其合束技术的研究[D]. 北京: 北京工业大学, 2017: 21-25.SUNCH. Study on High Power White Supercontinuum Fiber Laser and Its Beam Combining Technology[D]. Beijing: Beijing University of Technology, 2017: 21-25. (in Chinese)
[9] [9] 9杨未强, 宋锐, 韩凯, 等. 超连续谱激光光源研究进展[J]. 国防科技大学学报, 2020, 42(1): 1-9. doi: 10.11887/j.cn.202001001YANGW Q, SONGR, HANK, et al. Research progress of supercontinuum laser source[J]. Journal of National University of Defense Technology, 2020, 42(1): 1-9. (in Chinese). doi: 10.11887/j.cn.202001001
[10] [10] 10宋锐. 高功率全光纤近红外超连续谱光源的研究[D]. 长沙: 国防科学技术大学, 2013: 16-20. doi: 10.1088/1674-1056/22/8/084206SONGR. The Study on High-power All-fiber Near-infrared Supercontinuum Generation[D]. Changsha: National University of Defense Technology, 2013: 16-20. (in Chinese). doi: 10.1088/1674-1056/22/8/084206
[11] P H PIOGER, V COUDERC, P LEPROUX et al. High spectral power density supercontinuum generation in a nonlinear fiber amplifier. Optics Express, 15, 11358-11363(2007).
[12] R SONG, J HOU, S P CHEN et al. High power supercontinuum generation in a nonlinear ytterbium-doped fiber amplifier. Optics Letters, 37, 1529-1531(2012).
[13] R SONG, J HOU, S P CHEN et al. Near-infrared supercontinuum generation in an all-normal dispersion MOPA configuration above one hundred Watts. Laser Physics Letters, 10(2013).
[14] Q HAO, H P ZENG. Cascaded four-wave mixing in nonlinear Yb-doped fiber amplifiers. IEEE Journal of Selected Topics in Quantum Electronics, 20, 345-349(2014).
[15] J W DAWSON, M J MESSERLY, R J BEACH et al. Analysis of the scalability of diffraction-limited fiber lasers and amplifiers to high average power. Optics Express, 16, 13240-13266(2008).
[16] R CHERIF, M ZGHAL, L TARTARA et al. Supercontinuum generation by higher-order mode excitation in a photonic crystal fiber. Optics Express, 16, 2147-2152(2008).
Get Citation
Copy Citation Text
Hangzhou DONG, Tingwu GE, Wei LIU, Yu FAN, Zhuocheng TIAN. Picosecond pulsed near infrared supercontinuum laser[J]. Optics and Precision Engineering, 2022, 30(20): 2430
Category: Modern Applied Optics
Received: Apr. 6, 2022
Accepted: --
Published Online: Oct. 27, 2022
The Author Email: GE Tingwu (getingwu@bjut.edu.cn)