肖虎 1,2潘志勇 1,2陈子伦 1,2马鹏飞 1,2[ ... ]陈金宝 1,2,*
作者单位
摘要
1 国防科学技术大学 前沿交叉学科学院,长沙 410073
2 国防科技大学 南湖之光实验室,长沙 410073
锥形光纤能够有效兼顾非线性效应抑制和模式控制,具备实现高功率、高光束质量光纤激光的潜力。近期国防科技大学研制了锥形掺镱光纤,采用1018 nm光纤激光后向级联泵浦实现了20.2 kW 激光输出,光束质量β因子平均值优于2,拉曼抑制比为33 dB。研究结果展示了锥形光纤在实现万瓦级高光束质量激光方面的优势。
光纤激光器 级联泵浦 锥形光纤 光束质量 fiber laser tandem pump tapered fiber beam quality 
强激光与粒子束
2024, 36(1): 011001
Shuailin Liu 1,2,3Bin Zhang 1,2,3,*Yuanzhuang Bu 1,2,3Desheng Zhao 1,2,3[ ... ]Jing Hou 1,2,3,*
Author Affiliations
Abstract
1 College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha, China
2 Nanhu Laser Laboratory, National University of Defense Technology, Changsha, China
3 Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha, China
We report a Yb-doped all-fiber laser system generating burst-mode pulses with high energy and high peak power at a GHz intra-burst repetition rate. To acquire the uniform burst envelope, a double-pre-compensation structure with an arbitrary waveform laser diode driver and an acoustic optical modulator is utilized for the first time. The synchronous pumping is utilized for the system to reduce the burst repetition rate to 100 Hz and suppress the amplified spontaneous emission effect. By adjusting the gain of every stage, uniform envelopes with different output energies can be easily obtained. The intra-burst repetition rate can be tuned from 0.5 to 10 GHz actively modulated by an electro-optic modulator. Optimized by timing control of eight channels of analog signal and amplified by seven stages of Yb-doped fiber amplifier, the pulse energy achieves 13.3 mJ at 0.5 ns intra-burst pulse duration, and the maximum peak power reaches approximately 3.6 MW at 48 ps intra-burst pulse duration. To the best of our knowledge, for reported burst-mode all-fiber lasers, this is a record for output energy and peak power with nanosecond-level burst duration, and the widest tuning range of the intra-burst repetition rate. In particular, this flexibly tunable burst-mode laser system can be directly applied to generate high-power frequency-tunable microwaves.
burst-mode laser fiber laser high peak power high pulse energy 
High Power Laser Science and Engineering
2023, 11(6): 06000e81
江丽 1,2,3宋锐 1,2,3,*侯静 1,2,3,**陈胜平 1,2,3[ ... ]韩凯 1,2
作者单位
摘要
1 国防科技大学前沿交叉学科学院,湖南 长沙 410073
2 国防科技大学南湖之光实验室,湖南 长沙 410073
3 国防科技大学高能激光技术湖南省重点实验室,湖南 长沙 410073
高功率可见光至近红外波段的超连续谱光源在光电对抗、光学相干层析成像和高光谱激光雷达等方面具有广泛的应用前景。最近几年,涌现了一些用于产生高功率超连续谱光源的新方法,推动了高功率超连续谱光源的进一步发展。本文从主振荡功率放大结构、随机光纤激光器结构以及多路非相干合成这三种用于高功率超连续谱产生的主流方案出发,着重介绍了近年来有代表性的高功率可见光至近红外波段超连续谱光源的研究进展,并综合分析了这三种方案的优缺点以及未来的发展潜力。
非线性光学 高功率光纤超连续谱 渐变折射率多模光纤 光子晶体光纤 随机光纤激光器 多路非相干合成 
光学学报
2023, 43(17): 1719001
朱晰然 1,2,3张斌 1,2,3,*陈子伦 1,2,3赵得胜 1,2,3[ ... ]侯静 1,2,3
作者单位
摘要
1 国防科技大学 前沿交叉学科学院,湖南 长沙 410073
2 国防科技大学 南湖之光实验室,湖南 长沙 410073
3 国防科技大学 高能激光技术湖南省重点实验室,湖南 长沙 410073
中红外超荧光光源具有光谱范围宽、空间相干性好、时域稳定性高等特点,应用前景广泛,但受限于中红外侧面泵浦合束器,目前普遍利用空间结构泵浦产生。文中根据拉锥光纤侧面耦合的原理,在125 μm包层直径的无源双包层氟化物光纤上实现了中红外光纤侧面泵浦合束器的研制,该合束器泵浦光耦合效率达82.3%,可承受的最大泵浦功率达87.5 W。通过在中红外增益光纤上制得侧面泵浦合束器,实现了全光纤中红外超荧光光源产生,前后向输出的中红外超荧光最高功率和为91.09 mW (后向输出53.67 mW,前向输出37.42 mW),输出光谱范围从2702 nm覆盖至2830 nm。在中红外超荧光总输出功率为33.03 mW时,获得了108 nm的最宽20 dB带宽。文中实现的中红外全光纤超荧光光源克服了以往空间泵浦复杂度高、调节难的问题,对推动中红外超荧光光源的进一步功率放大具有重要意义。
中红外光纤光源 超荧光光源 侧面泵浦合束器 氟化物光纤 mid-infrared fiber source superfluorescent fiber source side-pumping combiner fluoride fiber 
红外与激光工程
2023, 52(5): 20230101
作者单位
摘要
1国防科技大学前沿交叉学科学院,湖南 长沙 410073
中国激光
2023, 50(11): 1116002
Desheng Zhao 1,2,3Bin Zhang 1,2,3,*Xiran Zhu 1,2,3Shuailin Liu 1,2,3[ ... ]Jing Hou 1,2,3,*
Author Affiliations
Abstract
1 College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha, China
2 Nanhu Laser Laboratory, National University of Defense Technology, Changsha, China
3 Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha, China

We propose a 2.1 μm high-energy dissipative soliton resonant (DSR) fiber laser system based on a mode-locked seed laser and dual-stage amplifiers. In the seed laser, the nonlinear amplifying loop mirror technique is employed to realize mode-locking. The utilization of an in-band pump scheme and long gain fiber enables effectively exciting 2.1 μm pulses. A section of ultra-high numerical aperture fiber (UHNAF) with normal dispersion and high nonlinearity and an output coupler with a large coupling ratio are used to achieve a high-energy DSR system. By optimizing the UHNAF length to 55 m, a 2103.7 nm, 88.1 nJ DSR laser with a 3-dB spectral bandwidth of 0.48 nm and a pulse width of 17.1 ns is obtained under a proper intracavity polarization state and pump power. The output power and conversion efficiency are 0.233 W and 4.57%, respectively, both an order of magnitude higher than those of previously reported holmium-doped DSR seed lasers. Thanks to the high output power and nanosecond pulse width of the seed laser, the average power of the DSR laser is linearly scaled up to 50.4 W via a dual-stage master oscillator power amplifier system. The 3-dB spectral bandwidth broadens slightly to 0.52 nm, and no distortion occurs in the amplified pulse waveform. The corresponding pulse energy reaches 19.1 μJ, which is the highest pulse energy in a holmium-doped mode-locked fiber laser system to the best of our knowledge. Such a 2.1 μm, high-energy DSR laser with relatively wide pulse width has prospective applications in mid-infrared nonlinear frequency conversion.

dissipative soliton resonance high pulse energy holmium-doped fiber laser system mode-locking 
High Power Laser Science and Engineering
2023, 11(1): 01000e12
Linyong Yang 1,2,3Yukun Yang 1Bin Zhang 1,2,3Xiran Zhu 1[ ... ]Jing Hou 1,2,3,*
Author Affiliations
Abstract
1 College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha, China
2 State Key Laboratory of Pulsed Power Laser Technology, Changsha, China
3 Nanhu Laser Laboratory, National University of Defense Technology, Changsha, China
We report the demonstration of a mid-infrared (MIR) supercontinuum (SC) laser delivering a record-breaking average output power of more than 40 W with a long-wavelength edge up to 3.5 μm. The all-fiberized configuration was composed of a thulium-doped fiber amplifier system emitting a broadband spectrum covering 1.9–2.6 μm with pulse repetition rate of 3 MHz, and a short piece of germania fiber. A 41.9 W MIR SC with a whole spectrum of 1.9–3.5 μm was generated in a piece of 0.2-m-long germania fiber, with a power conversion efficiency of 71.4%. For an even shorter germania fiber (0.1 m), an SC with even higher output power of 44.9 W (corresponding to a conversion efficiency of 76.5%) was obtained, but the energy conversion toward the long-wavelength region was slightly limited. A continuous operation for 1 hour with output power of 32.6 W showed outstanding power stability (root mean square 0.17%) of the obtained SC laser. To the best of the authors’ knowledge, for the first time, this work demonstrates the feasibility of germania fiber on generating a 40-W level MIR SC with high efficiency and excellent power stability, paving the way to real applications requiring high power and high reliability of MIR SC lasers.
fiber laser high power nonlinear optics supercontinuum generation 
High Power Laser Science and Engineering
2022, 10(6): 06000e36
杨林永 1,2,3张斌 1,2,3侯静 1,2,3,*
作者单位
摘要
1 国防科技大学前沿交叉学科学院,湖南 长沙 410073
2 脉冲功率激光技术国家重点实验室,湖南 长沙 410073
3 高能激光技术湖南省重点实验室,湖南 长沙 410073

高功率3~5 μm波段中红外超连续谱激光器在环境监测、生物医疗、测绘计量、**安全等领域有重要应用。在用于产生中红外超连续谱激光的非线性介质中,光纤易于实现大的非线性系数,且有效作用距离长、结构灵活、便于集成,得到了广泛研究。近年来,3~5 μm波段高功率中红外超连续谱光纤激光的技术方案日益丰富,性能指标逐步提升。总结了光谱覆盖3~5 μm的中红外超连续谱光纤激光的发展现状,并对其发展趋势进行了展望。

激光光学 超连续谱产生 非线性效应 光纤 光纤放大器 
中国激光
2022, 49(1): 0101001
Xuan He 1Bin Zhang 1,2,3Shuailin Liu 1Linyong Yang 1,2,3[ ... ]Jing Hou 1,2,3,*
Author Affiliations
Abstract
1 College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha410073, China
2 State Key Laboratory of Pulsed Power Laser Technology, Changsha410073, China
3 Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha410073, China
Narrowband microwave generation with tuneable frequency is demonstrated by illuminating a photoconductive semiconductor switch (PCSS) with a burst-mode fibre laser. The whole system is composed of a high-power linearly polarized burst-mode pulsed fibre laser and a linear-state PCSS. To obtain a high-performance microwave signal, a desired envelope of burst is necessary and a pulse pre-compensation technique is adopted to avoid envelope distortion induced by the gain-saturation effect. Resulting from the technique, homogenous peak power distribution in each burst is ensured. The maximum energy of the laser burst pulse reaches 200 μJ with a burst duration of 100 ns at the average power of 10 W, corresponding to a peak power of 4 kW. When the PCSS is illuminated by the burst-mode fibre laser, narrowband microwave generation with tuneable frequency (0.80–1.12 GHz) is obtained with a power up to 300 W. To the best of the authors’ knowledge, it is the first demonstration of frequency-tuneable narrowband microwave generation based on a fibre laser. The high-power burst-mode fibre laser reported here has great potential for generating high-power arbitrary microwave signals for a great deal of applicable demands such as smart adaptive radar and intelligent high-power microwave systems.
burst-mode pulse fibre laser linear polarization microwave signals 
High Power Laser Science and Engineering
2021, 9(2): 02000e13
Linyong Yang 1†Ying Li 2Bin Zhang 1,3,4†Tianyi Wu 1[ ... ]Jing Hou 1,3,4,*
Author Affiliations
Abstract
1 College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha 410073, China
2 Center for Teaching and Research Service, National University of Defense Technology, Changsha 410073, China
3 State Key Laboratory of Pulsed Power Laser Technology, Changsha 410073, China
4 Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha 410073, China
We report an all-fiberized 30-W supercontinuum (SC) generation in a piece of ZrF4-BaF2-LaF3-AlF3-NaF (ZBLAN) fiber. The pump source is a thulium-doped fiber amplifier (TDFA) with broadband output spectrum spanning the 1.9 to 2.6 μm region. The used ZBLAN fiber has a core diameter of 10 μm, and was directly fusion-spliced to the pigtail of the TDFA without using a traditional mode field adapter (MFA) or a piece of transition fiber. Such a low-loss and robust fusion splice joint, together with a robust AlF3-fiber-based endcap, enables efficient and high-power SC generation in the ZBLAN fiber. An SC with an average power up to 30.0 W and a spectral coverage of 1.9–3.35 μm with 20-dB bandwidth of 1.92–3.20 μm was obtained. Moreover, an SC with a broader spectrum was achieved by raising the pump pulse peak power (via reducing the duty ratio of the pump laser pulse). An SC with an output power of 27.4 W and a spectral coverage of 1.9–3.63 μm (with 20-dB bandwidth of 1.92–3.47 μm) was obtained, as well as an SC with output power of 24.8 W and a spectral coverage of 1.9–3.70 μm (with 20-dB bandwidth of 1.93–3.56 μm). The power conversion efficiency was measured as >69%. To the best of the authors’ knowledge, this research demonstrates the record output power of SC lasers based on ZBLAN fibers, paving the way for broadband and efficient multi-tens-of-watts SC generation in soft-glass fibers.
Photonics Research
2019, 7(9): 09001061

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