李昊 1,2杨保来 1,2饶斌裕 1,2叶新宇 1,2[ ... ]陈金宝 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
光纤光栅(FBG)在高功率光纤振荡器中发挥着重要作用,既可以作为谐振腔腔镜,又可以抑制受激拉曼散射(SRS)效应。使用飞秒激光在芯径为30 μm的大模场双包层光纤(LMA-DCF)上刻写了波长为1080 nm的FBG对以及波长为1135 nm的啁啾倾斜光纤光栅(CTFBG),利用FBG对搭建了全光纤振荡器,并使用CTFBG抑制了SRS,实现了9 kW激光功率输出,斜率效率为83.4%。研究结果有利于推动高功率FBG的研制和高功率光纤振荡器的发展。
光纤光学 飞秒激光 光纤振荡器 高功率激光器 受激拉曼散射 光纤光栅 
中国激光
2024, 51(5): 0515001
高旺城 1马瑞 1全欣 1陈宇 1[ ... ]刘军 1,2,*
作者单位
摘要
1 深圳大学微纳光电子学研究院二维材料光电科技国际合作联合实验室,广东 深圳 518060
2 中国科学院高功率激光物理重点实验室,上海 201800
中红外波段高功率激光光源在工业加工和生物医疗等领域中有着广泛的应用。报道了基于主振荡器功率放大器(MOPA)结构的百瓦级中红外连续波光纤随机激光器,获得了最高输出功率为100.40 W、斜率效率为47.8%、波长为1980 nm的连续波激光输出。得益于MOPA结构中光纤随机激光种子源在激光放大过程中的光谱带宽保持特性,100.40 W激光输出时的3 dB光谱带宽仅为~0.2 nm。激光器的短时时域强度波动和长时功率波动均表现出优良的稳定性。所提实验技术方案和实验结果有望进一步拓宽中红外高功率光纤随机激光器的应用范围。
激光器 光纤随机激光器 高功率激光器 瑞利散射 中红外激光器 高稳定性 
中国激光
2024, 51(5): 0501002
Author Affiliations
Abstract
1 California State University Channel Islands, Camarillo, California, USA
2 Université Paris-Saclay, CNRS/IN2P3, IJCLab, Orsay, France
3 Central Laser Facility, STFC Rutherford Appleton Laboratory, Didcot, UK
4 Ludwig–Maximilians–Universität München, Garching, Germany
5 BELLA Center, Lawrence Berkeley National Laboratory, Berkeley, California, USA
6 Department of Nuclear Engineering and Radiological Sciences, University of Michigan, Ann Arbor, Michigan, USA
7 Ergodic LLC, San Francisco, California, USA
8 Helmholtz-Zentrum Dresden – Rossendorf, Dresden, Germany
9 Queen’s University Belfast, Belfast, UK
The next generation of high-power lasers enables repetition of experiments at orders of magnitude higher frequency than what was possible using the prior generation. Facilities requiring human intervention between laser repetitions need to adapt in order to keep pace with the new laser technology. A distributed networked control system can enable laboratory-wide automation and feedback control loops. These higher-repetition-rate experiments will create enormous quantities of data. A consistent approach to managing data can increase data accessibility, reduce repetitive data-software development and mitigate poorly organized metadata. An opportunity arises to share knowledge of improvements to control and data infrastructure currently being undertaken. We compare platforms and approaches to state-of-the-art control systems and data management at high-power laser facilities, and we illustrate these topics with case studies from our community.
big data community organization control systems data management feedback loops high-power lasers high repetition rate metadata stabilization standards 
High Power Laser Science and Engineering
2023, 11(5): 05000e56
Author Affiliations
Abstract
1 Editor-in-Chief, High Power Laser Science and Engineering, Cambridge University Press, Cambridge, UK
2 AWE, Aldermaston, Reading, UK
3 Centre for Inertial Fusion Studies, Blackett Laboratory, Imperial College London, London, UK
4 Editorial Board Member, High Power Laser Science and Engineering, Cambridge University Press, Cambridge, UK
5 Istituto Nazionale di Ottica, Consiglio Nazionale delle Ricerche, Pisa, Italy
On behalf of all at High Power Laser Science and Engineering we would like to congratulate the team at Lawrence Livermore National Laboratory (LLNL) on demonstrating fusion ignition at the National Ignition Facility. This major scientific achievement was realized on the 5 December 2022 at the LLNL and announced at a press briefing on the 13 December 2022 by the United States Department of Energy’s National Nuclear Security Administration. This was a historic milestone and the culmination of decades of effort.
inertial confinement fusion fusion ignition inertial fusion energy high power lasers 
High Power Laser Science and Engineering
2023, 11(3): 03000e40
李昊 1,2王蒙 1,2,*武柏屹 1,2叶新宇 1,2[ ... ]陈金宝 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
啁啾倾斜光纤光栅(CTFBG)是高功率光纤激光系统中拉曼光滤除的重要器件。采用飞秒激光级联刻写的方式,在大模场面积双包层光纤(LMA-DCF)中制备了一个带宽约为15.2 nm、滤除深度大于20 dB的CTFBG,将其置于1080 nm高功率光纤激光长距离传输系统的输出端,实现了光谱无拉曼输出,明显提高了输出激光纯度,插入损耗约为0.3 dB,光束质量无明显变化。所提出的利用飞秒激光制备宽带CTFBG的方法可有效滤除光谱中的拉曼光,对CTFBG的研制与应用有重要意义。
光栅 飞秒激光 高功率激光器 受激拉曼散射 光纤光栅 啁啾倾斜光纤光栅 
光学学报
2023, 43(10): 1036001
张钧翔 1,2付士杰 1,2,*盛泉 1,2,**夏文新 1,2[ ... ]姚建铨 1,2
作者单位
摘要
1 天津大学精密仪器与光电子工程学院,天津 300072
2 天津大学光电信息技术教育部重点实验室,天津 300072
为了提升中红外光纤激光器的功率和效率,基于掺铒氟化物光纤的高效热管理技术、高性能中红外光纤端帽制备技术和高功率泵浦激光的高效耦合技术,利用高功率976 nm半导体激光器,单端泵浦8 m长、掺杂铒离子的摩尔分数为7%的氟化物增益光纤,实现了33.8 W的中红外2.8 μm激光输出,据我们所知,这是单端泵浦中红外光纤激光器的最高功率水平,此时激光器的光光转换效率达26.4%。
激光器 中红外光纤激光器 单端泵浦 高功率激光 掺铒氟化物光纤 
中国激光
2023, 50(7): 0715001
Yuanzhi Dong 1,2,3Yunxia Jin 1,3,4Fanyu Kong 1,3,*Jingyin Zhao 1,3[ ... ]Jianda Shao 1,2,3,4,5
Author Affiliations
Abstract
1 Thin Film Optics Laboratory, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai, China
2 School of Physical Sciences, University of Science and Technology of China, Hefei, China
3 Key Laboratory of High Power Laser Materials, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai, China
4 CAS Center for Excellence in Ultra-intense Laser Science, Chinese Academy of Sciences, Shanghai, China
5 Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences, Hangzhou, China
In this paper, a 2D angle amplifier based on peristrophic multiplexed volume Bragg gratings is designed and prepared, in which a calculation method is firstly proposed to optimize the number of channels to a minimum. The induction of peristrophic multiplexing reduces the performance difference in one bulk of the grating, whereas there is no need to deliberately optimize the fabrication process. It is revealed that a discrete 2D angle deflection range of ±30° is obtained and the relative diffraction efficiency of all the grating channels reaches more than 55% with a root-mean-square deviation of less than 3.4% in the same grating. The deviation of the Bragg incidence and exit angles from the expected values is less than 0.07°. It is believed that the proposed 2D angle amplifier has the potential to realize high-performance and large-angle beam steering in high-power laser beam scanning systems.
beam scanning high-power lasers volume Bragg gratings 
High Power Laser Science and Engineering
2023, 11(1): 01000e13
Author Affiliations
Abstract
1 Kansai Photon Science Institute, National Institutes for Quantum Science and Technology, Kyoto619-0215, Japan
2 Center for Relativistic Laser Science, Institute for Basic Science, Gwangju61005, Republic of Korea
3 Advanced Photonics Research Institute, Gwangju Institute of Science and Technology, Gwangju61005, Republic of Korea
4 Department of Physics and Photon Science, Gwangju Institute of Science and Technology, Gwangju61005, Republic of Korea
5 Helmholtz-Zentrum Dresden – Rossendorf, 01328Dresden, Germany
6 Technische Universität Dresden, 01062Dresden, Germany
We report on the design and characterization of the plasma mirror system installed on the J-KAREN-P laser at the Kansai Photon Science Institute, National Institutes for Quantum Science and Technology. The reflectivity of the single plasma mirror system exceeded 80%. In addition, the temporal contrast was improved by two orders of magnitude at 1 ps before the main pulse. Furthermore, the laser near-field spatial distribution after the plasma mirror was kept constant at plasma mirror fluence of less than 100 kJ/cm2. We also present the results of investigating the difference and the fluctuation in energy, pulse width and pointing stability with and without the plasma mirror system.
high-power lasers laser plasma plasma mirror 
High Power Laser Science and Engineering
2022, 10(4): 04000e25
作者单位
摘要
1 中北大学 信息与通信工程学院,太原
2 光电信息控制和安全技术重点实验室,天津
3 河北工业大学先进激光技术研究中心,天津
基于液体介质的受激布里渊散射(stimulated Brillouin scattering, SBS)因其具有大能量负载、高能量转换效率、对纳秒脉冲的高效率压缩、相位共轭特性、改善光束质量、高量子转换效率等诸多优点广泛应用于高功率激光系统中。液体SBS相位共轭、脉冲压缩和激光组束等作为重要的研究方向,得到了研究学者的广泛关注和研究。本文介绍了SBS的基本原理和不同SBS增益介质特性,回顾了液体SBS相位共轭镜、脉冲压缩器和激光组束在高功率激光系统中的研究进展并对发展方向进行了展望。
受激布里渊散射 高功率激光 相位共轭镜 脉冲压缩 激光组束 stimulated Brillouin scattering (SBS) high-power lasers phase conjugate mirrors pulse compression beam combination 
光电技术应用
2022, 37(2): 1
作者单位
摘要
1 华中科技大学武汉光电国家研究中心,湖北 武汉 430074
2 武汉长进激光技术有限公司,湖北 武汉 430223
3 上海保隆汽车科技股份有限公司,上海 201619
基于改进的化学气相沉积(MCVD)工艺和溶液掺杂法,成功制备出25 μm/ 300 μm大模场铒镱共掺光纤,并研究了其激光放大性能。该光纤的纤芯数值孔径为0.12,940 nm包层的吸收系数为2.85 dB/m。搭建了全光纤主振荡功率放大(MOPA)结构测试平台,当铒镱共掺光纤长度为8 m,940 nm泵浦光功率为141 W时,输出功率最大为61.7 W,斜率效率达到42%,输出光谱没有观察到明显的放大自发辐射(ASE)。
激光器 光纤激光器 铒镱共掺 大模场面积光纤 高功率激光 
中国激光
2022, 49(13): 1301004

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