Optical Communication Technology, Volume. 49, Issue 3, 102(2025)
Research on high-gain and high-stability fiber amplifiers for fiber laser system
[1] [1] LIU H, CAO S, LIN B, et al. Comparison of different fiber amplifiers in Yb-doped fiber femtosecond optical frequency combs [J]. Optics Communications, 2016, 381: 403-408.
[2] [2] ZHOU Q, ZHOU C H, YU N, et al. Narrow-spectral-span spectral beam combining with a nonparallel double-grating structure [J]. Chinese Optics Letters, 2017, 15(9): 1-8.
[7] [7] LIU Q M, LIU J, MING Z, et al. Research progress on laser-assisted precision machining technology [J]. 2025, 16(2): 173-178.
[8] [8] KAWAHITO Y, WANG H, KATAYAMA S, et al. Ultra high power (100 kW)fiber laser welding of steel [J]. Optics Letters, 2018, 43(19): 4667-4670.
[9] [9] AHMEDSYED A, MUJAHID M, MUHAMMAD Z A S. Survey and technological analysis of laser and its defense applications[J]. DefenceTechnology, 2021, 17(2): 583-592.
[10] [10] LAI W C, MA P F, SONG J X, et al. Kilowatt-level, narrow linewidth, polarization-maintained all-fiber amplifiers based on multi-phase coded signal modulation and laser gain competition[J]. Results in Physics, 2021, 31 (5): 1-6.
[11] [11] BETTI R, HURRICANE O A. Inertial-confinement fusion with lasers[J]. Nature Physics, 2016, 12(5): 435-448.
[12] [12] DHUMIRESE, CARON J, PEREGO C, et al. Preparation of the high power laser system PETAL for experimental studies of inertial confinement fusion and high energy densit y states of matt er[J]. Journal of Physics: Conference Series, 2016, 688(5): 1-8.
[13] [13] GOWDA A, BUCKLEY B, DEVORE P, et al. High fidelity pulse shaping for the national ignition facility[C]//DESY. Proceedings of International Conference on Accelerator and Large Experimental Physics Control Systems. Hamburg: DESY, 2023: 1-17.
[15] [15] ZHU R, WANG J T, ZHOU J, et al. Single-frequency high-energy Ybdoped pulsed all-fiber laser[J]. Chinese Optics Letters, 2012, 10(9): 091402-091405.
[16] [16] FU S J, BAI X L, SHI C D, et al. High-energy 100-ns single-frequency all-fiber laser at 1 064 nm[Z]. Fiber Lasers XV: Technology and Systems, 2018: 1-8.
[17] [17] PATOKOSKI K, RISSANEN J, NORONEN T, et al. Single-frequency 100 ns/5 mJ laser pulses from all-fiber double clad ytterbium doped tapered fiber amplifier[J]. Optics Express, 2019, 27(22): 31532-31538.
[18] [18] SHI C D, TIAN H, FU S J, et al. High-energy single-frequency pulsed fiber MOPA at 1064 nm based on a hybrid active-fiber[J]. Optics Express, 2022, 30 (9): 1-8.
[21] [21] BAI X L, CHEN X N, TIAN C A, et al. Theoretical analysis of thermal distribution and waveform evolution in pulsed Ytterbium-doped fiber amplifier with extra feedback[J]. Photonics, 2023, 10(4): 1-6.
[23] [23] FLORENT S, PIERRE G, ARNAUD P, et al. All-fiber MOPA prototype with 100J temporally-shaped nanosecond-pulse and spatially coherent tophat beam output for large-scale laser facilityfront end [C]// IEEE.Proceedings of the Conference on Lasers and Electro-Optics. San Jose: Optica Publishing Group,2016:1-2.
[24] [24] JOACHIM H, JEAN-FRANOIS C, PERRIN A, et al. Industrial mJ-class all-fiber front end with spatially coherent top-hat beam output used as seeder for high power laser[Z]. High-Power, High-Energy, and High-Intensity Laser Technology II, 2015, 9513(95130C): 1-8
[25] [25] ALAIN J, JEAN-FRANOIS G, DENIS P, et al. Fiber lasers integration for LMJ[J]. Comptes Rendus Physique, 2006, 7(2): 198-212.
[26] [26] DI NICOLA J M, SURATWALA T, PELZ L, et al. Delivering laser performance conditions to enable fusion ignition, and beyond at the national ignition facility[J]. High Energy Density Physics, 2024, 52(2): 1-18.
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LI Zhigang, XIE Zhuoxin, LI Xiaohui, ZHANG Liang, CHEN Feng, YANG Wanli, YANG Xiaoliang. Research on high-gain and high-stability fiber amplifiers for fiber laser system[J]. Optical Communication Technology, 2025, 49(3): 102
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Received: Mar. 31, 2025
Accepted: Jun. 27, 2025
Published Online: Jun. 27, 2025
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