侯可 1,2欧阳小平 1,3,*潘良泽 1,3丁福财 1,2[ ... ]朱健强 1,3
作者单位
摘要
1 中国科学院上海光学精密机械研究所高功率激光物理重点实验室,上海 201800
2 中国科学院大学,北京 100049
3 上海交通大学IFSA协同创新中心,上海 200240
4 中国工程物理研究院上海激光等离子体研究所,上海 201800
拍瓦激光系统中剩余的高阶色散导致了脉冲波形的振荡,影响了拍瓦激光的信噪比。为了进一步优化拍瓦激光的信噪比特性,满足激光加速电子、质子等粒子的效率提升需求,本文提出了一种基于双折射晶体的新型超短脉冲的三阶色散主动调控方法,用于信噪比的主动调控。通过数值分析模拟了双折射晶体引入的二阶色散、三阶色散,针对中心波长为1053 nm的拍瓦激光系统,选择适当的晶体厚度,可以通过调节双折射晶体的面内旋转角改变系统剩余三阶色散。同时,基于神光Ⅱ第九路拍瓦激光系统光参量啁啾脉冲放大(OPCPA)预压缩的信噪比测量值,对比了不同量级剩余三阶色散对脉冲信噪比的影响,得出通过改变拍瓦激光系统中剩余三阶色散量,可实现不同量级信噪比的主动调控的结论。该研究结果对于高能激光系统剩余三阶色散的补偿以及信噪比的优化具有重要意义。
激光器与激光光学 双折射晶体 三阶色散 信噪比 拍瓦激光 
光学学报
2023, 43(10): 1014003
作者单位
摘要
中国科学院上海光学精密机械研究所高功率激光物理联合实验室,上海 201800
准直系统用于高功率激光驱动器光路自动调整,同时也是保证光束质量的主要手段,其工作原理是在准直图像处理的基础上进行反馈控制。激光光斑与准直基准中心的识别提取是图像处理的核心。将蚁群算法引入到准直基准轮廓及光斑轮廓提取中,以图像灰度梯度作为信息素,提高对基准和光斑的边缘提取能力,同时针对准直图像的特性对蚁群算法进行优化处理,增强准直系统的自适应性。
图像处理 蚁群算法 高功率激光 光路准直 
激光与光电子学进展
2022, 59(10): 1011001
Author Affiliations
Abstract
1 Beijing National Laboratory of Condensed Matter Physics, Institute of Physics, CAS, Beijing 100190, China
2 Institute of Laser Engineering, Osaka University, 2-6 Yamada-oka, Suita, Osaka, Japan
3 Songshan Lake Materials Laboratory, Dongguan, Guangdong 523808, China
4 Department of Advanced Photon Research, Kansai Photon Science Institute, National Institutes for Quantum and Radiological Science and Technology, 619-0215 Kyoto, Japan
5 Key Laboratory of Optical Astronomy, National Astronomical Observatories, Chinese Academy of Sciences, Beijing 100101, China
6 Department of Astronomy, Beijing Normal University, Beijing 100875, China
7 Center for Advanced Material Diagnostic Technology, College of Engineering Physics, Shenzhen Technology University, Shenzhen 518118, China
8 Shanghai Institute of Laser Plasma, Shanghai 201800, China
9 National Laboratory on High Power Laser and Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
The Zeeman splitting effect is observed in a strong magnetic field generated by a laser-driven coil. The expanding plasma from the coil wire surface is concentrated at the coil center and interacts with the simultaneously generated magnetic field. The Cu I spectral lines at wavelengths of 510.5541, 515.3235, and 521.8202 nm are detected and analyzed. The splittings of spectral lines are used to estimate the magnetic field strength at the coil center as ∼31.4 ± 15.7 T at a laser intensity of ∼5.6 × 1015 W/cm2, which agrees well with measurements using a B-dot probe. Some other plasma parameters of the central plasma disk are also studied. The temperature is evaluated from the Cu I spectral line intensity ratio, while the electron density is estimated from the Stark broadening effect.
Matter and Radiation at Extremes
2022, 7(2): 024402
Author Affiliations
Abstract
1 Blackett Laboratory, Imperial College London, London, UK
2 First Light Fusion Ltd, Yarnton, UK
3 LERMA, Sorbonne-Université, Observatoire de Paris, CNRS, France
4 ELI Beamlines Center, Institute of Physics, Czech Academy of Sciences, Dolni Brezany, Czech Republic
5 Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai, China
6 Instituto de Fusión Nuclear Guillermo Velarde, Universidad Politécnica de Madrid, Madrid, Spain
7 AWE plc., Aldermaston, Reading, UK
8 Science and Technology Facilities Council, Rutherford Appleton Laboratory, Harwell Campus, Chilton, Didcot, UK
9 University of Michigan, Ann Arbor, MI, USA
10 Current affiliation: Magdrive Ltd, Harwell, UK
We report on the design and first results from experiments looking at the formation of radiative shocks on the Shenguang-II (SG-II) laser at the Shanghai Institute of Optics and Fine Mechanics in China. Laser-heating of a two-layer CH/CH–Br foil drives a $\sim 40$ km/s shock inside a gas cell filled with argon at an initial pressure of 1 bar. The use of gas-cell targets with large (several millimetres) lateral and axial extent allows the shock to propagate freely without any wall interactions, and permits a large field of view to image single and colliding counter-propagating shocks with time-resolved, point-projection X-ray backlighting ($\sim 20$ μm source size, 4.3 keV photon energy). Single shocks were imaged up to 100 ns after the onset of the laser drive, allowing to probe the growth of spatial nonuniformities in the shock apex. These results are compared with experiments looking at counter-propagating shocks, showing a symmetric drive that leads to a collision and stagnation from $\sim 40$ ns onward. We present a preliminary comparison with numerical simulations with the radiation hydrodynamics code ARWEN, which provides expected plasma parameters for the design of future experiments in this facility.
high energy density physics laboratory astrophysics plasma physics high-power laser laser-driven shocks experiments X-ray backlighting X-ray radiography 
High Power Laser Science and Engineering
2021, 9(2): 02000e27
作者单位
摘要
1 中国科学院上海光学精密机械研究所高功率激光物理联合实验室, 上海 201800
2 中国科学院大学, 北京 100049
3 中国工程物理研究院上海激光等离子体研究所, 上海 201800

提出一种标定超短脉冲测量装置时间分辨率的新方法。设计制作可产生特定时间延迟的平面平晶,标定时将其放置在自相关仪前的光路中;待测光脉冲经过平面平晶后会产生时间延迟为T的双脉冲,该双脉冲到达自相关晶体发生相互作用,产生自相关信号,此时信号的主峰两端会出现较为明显的次峰信号,该次峰信号之间的时间间隔为2T,这样双脉冲的时间延迟就转换为次峰信号峰值的空间距离,经CCD接收后可计算得到自相关仪的时间分辨率。采用此方法对自相关仪时间分辨率标定的结果为217.88 fs/pixel,与移动光程延迟器法得到的标定结果214.27 fs/pixel相比,相对误差仅为1.68%;与可单次标定的鉴别率板法相比,采用此方法标定结果的相对扩展不确定度为1.50%,优于鉴别率板法的6.96%。

测量 时间分辨率 脉冲宽度 不确定度 
中国激光
2021, 48(7): 0704002
王冰艳 1李养帅 1,*张攀政 1,**王利 1[ ... ]朱健强 1
作者单位
摘要
1 中国科学院上海光学精密机械研究所高功率激光物理联合实验室, 上海 201800
2 中国工程物理研究院上海激光等离子体研究所, 上海 201800
重复频率激光放大器是实现重复频率激光器的关键器件,其重复频率取决于对抽运及放大过程中产生热量的有效控制。针对千焦耳量级输出重复频率激光器的需求,通过合理的结构设计、冷却液选型及测试等,研制出一台基于氙灯抽运、钕玻璃增益介质、液体冷却、通光直径为Φ130 mm的激光放大器样机。测试结果表明,该放大器样机可实现每分钟一次的重复频率运行,同时具备双程1.3189倍净增益,双程动态波前PV(peak to valley)平均值为0.2718波长(λ)(20 ℃,λ=1053 nm,10发次计)和0.3223λ(30 ℃,λ=1053 nm,10发次计)。
激光器 重复频率激光放大器 液体冷却 氙灯抽运 钕玻璃 
中国激光
2019, 46(10): 1001007
朱健强 1,2,*陈绍和 1,2郑玉霞 1,2黄关龙 1,2[ ... ]邓锡铭 1,2
作者单位
摘要
1 高功率激光物理联合实验室, 上海 201800
2 中国科学院上海光学精密机械研究所, 上海 201800
3 中国工程物理研究院上海激光等离子体研究所, 上海 201800
神光Ⅱ大型固体高功率激光装置是我国激光驱动器发展历史的里程碑, 其成功研制使我国高功率固体激光工程与技术、聚变物理与基础物理研究实现了全面且本质的跨越式发展。简要概述了神光Ⅱ激光装置研制中创新发展的大量工程方案与技术手段, 举例介绍了神光Ⅱ激光装置在近20年来的高质量运行中取得的众多有国际影响力的研究成果。经多方支持和多年持续发展, 已经形成数万焦耳级纳秒激光装置、皮秒拍瓦以及飞秒拍瓦激光装置等, 这些装置是我国惯性约束核聚变、强场物理、高能量密度物理等研究领域中重要的物理实验核心平台之一。
激光技术 惯性约束核聚变 固体激光驱动器 聚变点火 高功率激光 
中国激光
2019, 46(1): 0100002
Author Affiliations
Abstract
1 National Laboratory on High Power Laser and Physics, Shanghai 201800, China
2 Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
3 Shanghai Institute of Laser Plasma, Chinese Academy of Engineering and Physics, Shanghai 201800, China
In this paper, we review the status of the multifunctional experimental platform at the National Laboratory of High Power Laser and Physics (NLHPLP). The platform, including the SG-II laser facility, SG-II 9th beam, SG-II upgrade (SG-II UP) facility, and SG-II 5 PW facility, is operational and available for interested scientists studying inertial confinement fusion (ICF) and a broad range of high-energy-density physics. These facilities can provide important experimental capabilities by combining different pulse widths of nanosecond, picosecond, and femtosecond scales. In addition, the SG-II UP facility, consisting of a single petawatt system and an eight-beam nanosecond system, is introduced including several laser technologies that have been developed to ensure the performance of the facility. Recent developments of the SG-II 5 PW facility are also presented.
high-power laser facility inertial confinement fusion solid-state amplifier 
High Power Laser Science and Engineering
2018, 6(4): 04000e55
作者单位
摘要
1 中国科学院上海光学精密机械研究所 高功率激光物理联合实验室, 上海 201800
2 中国科学院大学, 北京 100049
利用新型准直远场探测包光栅元件的双向衍射, 实现了空间滤波器的小孔准直, 特别是对同一段光路中两个空间滤波器的小孔对准.该方案克服了传统滤波器对小孔尺寸的限制并满足远场准直包高稳定性的要求, 在光路远场准直的同时实现了小孔中心位置的监测与准直调整, 并在以色列项目中得以成功应用, 装置实验结果表明: 针对装置15倍衍射极限大小的小孔, 对准精度小于小孔直径3%, 满足装置器件小孔对准调试小于小孔直径4%的要求.
激光技术 准直 空间滤波器 系统设计 光栅 Lasers Collimation Spatial filtering Systems design Gratings 
光子学报
2018, 47(11): 1114002
Author Affiliations
Abstract
1 Key Laboratory of Optical Astronomy, National Astronomical Observatories, Chinese Academy of Sciences, Beijing 100012, China
2 National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China
3 Department of Astronomy, Beijing Normal University, Beijing 100875, China
4 Key Laboratory for Laser Plasmas (MoE) and Department of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai 200240, China
5 Collaborative Innovation Center of IFSA (CICIFSA), Shanghai Jiao Tong University, Shanghai 200240, China
6 INPAC and School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai Key Laboratory for Particle Physics and Cosmology, Shanghai 200240, China
7 Shanghai Institute of Laser Plasma, Shanghai 201800, China
8 Research Center for Laser Fusion, China Academy of Engineering Physics, Mianyang 621900, China
9 National Laboratory on High Power Laser and Physics, Chinese Academy of Sciences, Shanghai 201800, China
10 School of Astronomy and Space Science, University of Chinese Academy of Sciences, Beijing 101408, China
11 School of Physical Sciences, University of Chinese Academy of Sciences, Beijing 100049, China
Astrophysical collisionless shocks are amazing phenomena in space and astrophysical plasmas, where supersonic flows generate electromagnetic fields through instabilities and particles can be accelerated to high energy cosmic rays. Until now, understanding these micro-processes is still a challenge despite rich astrophysical observation data have been obtained. Laboratory astrophysics, a new route to study the astrophysics, allows us to investigate them at similar extreme physical conditions in laboratory. Here we will review the recent progress of the collisionless shock experiments performed at SG-II laser facility in China. The evolution of the electrostatic shocks and Weibel-type/filamentation instabilities are observed. Inspired by the configurations of the counter-streaming plasma flows, we also carry out a novel plasma collider to generate energetic neutrons relevant to the astrophysical nuclear reactions.
collisionless shock electromagnetic field high power lasers laboratory astrophysics 
High Power Laser Science and Engineering
2018, 6(3): 03000e45

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!