魏见萌 1,2夏长权 3,*冯珂 2张虹 2[ ... ]李儒新 2,4
作者单位
摘要
1 中国科学技术大学物理学院,安徽 合肥 230026
2 中国科学院上海光学精密机械研究所,强场激光物理国家重点实验室,中国科学院超强激光科学卓越中心,上海 201800
3 扬州大学物理科学与技术学院,江苏 扬州 225009
4 上海科技大学物质科学与技术学院,上海 200031
逆康普顿散射源是利用高能电子束和强激光对撞产生高能辐射的光源。传统电子加速器作为电子源的逆康普顿散射源体积庞大,难以推广。而新型的激光等离子体电子加速器具有更高的加速梯度,具备小型化的发展潜力。全光逆康普顿散射源就是一种基于激光等离子体电子加速器实现的小型化高能辐射源,具有更短脉宽、更高亮度的辐射输出,应用前景十分广阔。首先,总结了全光逆康普顿散射源在提高亮度、能量和单能性等方面的优化研究进展,并分析了设计重点;最后,介绍了全光逆康普顿散射源在基础科学研究、工业和生物医学领域的典型应用。
超快激光 激光等离子体电子加速 全光逆康普顿散射源 新型辐射源 
光学学报
2024, 44(4): 0400004
Author Affiliations
Abstract
1 GSI Helmholtzzentrum für Schwerionenforschung GmbH, Darmstadt, Germany
2 Institut d’Optique, Université Paris-Saclay, Palaiseau, France
3 Institut für Angewandte Physik, Technische Universität Darmstadt, Darmstadt, Germany
This paper presents the development and experimental utilization of a synchronized off-harmonic laser system designed as a probe for ultra-intense laser–plasma interaction experiments. The system exhibits a novel seed-generation design, allowing for a variable pulse duration spanning over more than three orders of magnitude, from 3.45 picoseconds to 10 nanoseconds. This makes it suitable for various plasma diagnostics and visualization techniques. In a side-view configuration, the laser was employed for interferometry and streaked shadowgraphy of a laser-induced plasma while successfully suppressing the self-emission background of the laser–plasma interaction, resulting in a signal-to-self-emission ratio of 110 for this setup. These properties enable the probe to yield valuable insights into the plasma dynamics and interactions at the PHELIX facility and to be deployed at various laser facilities due to its easy-to-implement design.
interferometry laser–plasma interaction off-harmonic probe laser streaked shadowgraphy 
High Power Laser Science and Engineering
2024, 12(1): 01000e10
Author Affiliations
Abstract
1 Key Laboratory of Laser Plasma (MoE), School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai, China
2 IFSA Collaborative Innovation Center, Shanghai Jiao Tong University, Shanghai, China
3 Institute of High Energy Physics, Chinese Academy of Sciences, Beijing, China
4 Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai, China
5 Key Laboratory of Nuclear Physics and Ion-beam Application (MoE), Institute of Modern Physics, Fudan University, Shanghai, China
Fast neutron absorption spectroscopy is widely used in the study of nuclear structure and element analysis. However, due to the traditional neutron source pulse duration being of the order of nanoseconds, it is difficult to obtain a high-resolution absorption spectrum. Thus, we present a method of ultrahigh energy-resolution absorption spectroscopy via a high repetition rate, picosecond duration pulsed neutron source driven by a terawatt laser. The technology of single neutron count is used, which results in easily distinguishing the width of approximately 20 keV at 2 MeV and an asymmetric shape of the neutron absorption peak. The absorption spectroscopy based on a laser neutron source has one order of magnitude higher energy-resolution power than the state-of-the-art traditional neutron sources, which could be of benefit for precisely measuring nuclear structure data.
fast neutron absorption spectroscopy laser plasma accelerator photo-nuclear neutrons single neutron count 
High Power Laser Science and Engineering
2024, 12(1): 01000e11
Author Affiliations
Abstract
1 Department of Engineering Physics, Air Force Institute of Technology, WPAFB, OH, USA
2 Physics Department, Marietta College, Marietta, OH, USA
3 Department of Physics, The Ohio State University, Columbus, OH, USA
4 Department of Materials Science and Engineering, and Department of Electrical and Computer Science, The Ohio State University, Columbus, OH, USA
5 Intense Energy Solutions, LLC, Plain City, OH, USA
We present detailed characterization of laser-driven fusion and neutron production ( $\sim {10}^5$ /second) using 8 mJ, 40 fs laser pulses on a thin (<1 μm) D ${}_2$ O liquid sheet employing a measurement suite. At relativistic intensity ( $\sim 5\times {10}^{18}$ W/cm ${}^2$ ) and high repetition rate (1 kHz), the system produces deuterium–deuterium (D-D) fusion, allowing for consistent neutron generation. Evidence of D-D fusion neutron production is verified by a measurement suite with three independent detection systems: an EJ-309 organic scintillator with pulse-shape discrimination, a ${}^3\mathrm{He}$ proportional counter and a set of 36 bubble detectors. Time-of-flight analysis of the scintillator data shows the energy of the produced neutrons to be consistent with 2.45 MeV. Particle-in-cell simulations using the WarpX code support significant neutron production from D-D fusion events in the laser–target interaction region. This high-repetition-rate laser-driven neutron source could provide a low-cost, on-demand test bed for radiation hardening and imaging applications.
high-repetition-rate laser-driven fusion laser–plasma interaction liquid target neutron detectors 
High Power Laser Science and Engineering
2024, 12(1): 010000e2
作者单位
摘要
1 湖北文理学院机械工程学院, 湖北 襄阳 441053
2 湖南工业大学机械工程学院, 湖南 株洲 412007
利用烧蚀阈值理论, 研究飞秒激光对面齿轮的烧蚀特征, 得到了面齿轮的烧蚀阈值。建立烧蚀模型, 计算仿真了飞秒激光在单脉冲与多脉冲烧蚀过程中的理论宽度与深度。利用等离子体冲击波传播半径随时间变化的规律, 耦合飞秒激光多脉冲烧蚀时的表面残余温度变化, 得到等离子体冲击波的动态反冲压力机理图, 并得到飞秒激光加工过程中, 等离子体冲击波动态反冲压力对烧蚀的凹坑形貌以及扫描隧道与烧蚀平面形貌变化的影响。通过试验验证飞秒激光对面齿轮进行隧道扫描时, 随着扫描速度的增加, 隧道的直线度降低。高功率条件下, 增加相邻扫描道扫描间距, 烧蚀后的齿面精度更高。
飞秒激光 激光等离子体 冲击波 面齿轮 烧蚀特征 femtosecond laser laser plasma shock wave face gear ablation characteristic 
应用激光
2023, 43(3): 0068
Author Affiliations
Abstract
1 SANKEN (Institute of Scientific and Industrial Research), Osaka University, Ibaraki, Osaka, Japan
2 Kansai Institute for Photon Science (KPSI), National Institutes for Quantum Science and Technology (QST), Kizugawa-city, Kyoto, Japan
3 RIKEN SPring-8 Center, Sayo, Hyogo, Japan
Supersonic gas jets generated via a conical nozzle are widely applied in the laser wakefield acceleration of electrons. The stability of the gas jet is critical to the electron injection and the reproducibility of the wakefield acceleration. Here we discussed the role of the stilling chamber in a modified converging–diverging nozzle to dissipate the turbulence and to stabilize the gas jets. By the fluid dynamics simulations and the Mach–Zehnder interferometer measurements, the instability originating from the nonlinear turbulence is studied and the mechanism to suppress the instability is proposed. Both the numerical and experimental results prove that the carefully designed nozzle with a stilling chamber is able to reduce the perturbation by more than 10% compared with a simple-conical nozzle.
shock injection hydrodynamic stability laser wakefield acceleration laser–plasma interaction 
High Power Laser Science and Engineering
2023, 11(6): 06000e91
Author Affiliations
Abstract
1 Centre Lasers Intenses et Applications (CELIA), Université de Bordeaux–CNRS–CEA, Talence cedex, France
2 ENEA, Fusion and Technology for Nuclear Safety and Security Department, C.R. Frascati, Frascati, Italy
3 AWE, Aldermaston, Reading, UK
4 Centre for Inertial Fusion Studies, Blackett Laboratory, Imperial College London, London, UK
5 Istituto Nazionale di Ottica, Consiglio Nazionale delle Ricerche (CNR-INO), Pisa, Italy
6 ETSIAE Universidad Politecnica de Madrid, Madrid, Spain
7 GSI-Helmholtzzentrum für Schwerionenforschung GmbH, Darmstadt, Germany
8 Laboratoire pour l’Utilisation des Lasers Intenses (LULI), CNRS–Ecole Polytechnique, Palaiseau cedex, France
9 ALP, Le Barp, France and CEA/DAM Île de France, Bruyères le Châtel, Arpajon cedex, France
10 Instituto Fusión Nuclear “Guillermo Velarde” (IFN-GV), Universidad Politecnica de Madrid, Madrid, Spain
11 Central Laser Facility, STFC Rutherford Appleton Laboratory, Harwell Oxford, Oxfordshire, UK
12 Institute of Plasma Physics and Lasers, University Research and Innovation Centre, Hellenic Mediterranean University, Rethymno, Crete, Greece
13 Department of Electronic Engineering, School of Engineering, Hellenic Mediterranean University, Chania, Crete, Greece
14 Extreme Light Infrastructure ERIC, ELI-Beamlines Facility, Dolní Břežany, Czech Republic
15 Centro de Laseres Pulsados (CLPU), Parque Cientifico, Villamayor, Salamanca, Spain
The recent achievement of fusion ignition with laser-driven technologies at the National Ignition Facility sets a historic accomplishment in fusion energy research. This accomplishment paves the way for using laser inertial fusion as a viable approach for future energy production. Europe has a unique opportunity to empower research in this field internationally, and the scientific community is eager to engage in this journey. We propose establishing a European programme on inertial-fusion energy with the mission to demonstrate laser-driven ignition in the direct-drive scheme and to develop pathway technologies for the commercial fusion reactor. The proposed roadmap is based on four complementary axes: (i) the physics of laser–plasma interaction and burning plasmas; (ii) high-energy high repetition rate laser technology; (iii) fusion reactor technology and materials; and (iv) reinforcement of the laser fusion community by international education and training programmes. We foresee collaboration with universities, research centres and industry and establishing joint activities with the private sector involved in laser fusion. This project aims to stimulate a broad range of high-profile industrial developments in laser, plasma and radiation technologies along with the expected high-level socio-economic impact.
education and training fusion reactor technology high-energy laser high repetition rate laser inertial confinement fusion laser–plasma interaction public–private partnership radiation resistant materials 
High Power Laser Science and Engineering
2023, 11(6): 06000e83
K. Q. Pan 1Z. C. Li 1,*L. Guo 1T. Gong 1[ ... ]X. T. He 2,3
Author Affiliations
Abstract
1 Laser Fusion Research Center, China Academy of Engineering Physics, Mianyang, China
2 Center for Applied Physics and Technology, Peking University, Beijing, China
3 Institute of Applied Physics and Computational Mathematics, Beijing, China
Competition among the two-plasmon decay (TPD) of backscattered light of stimulated Raman scattering (SRS), filamentation of the electron-plasma wave (EPW) and forward side SRS is investigated by two-dimensional particle-in-cell simulations. Our previous work [K. Q. Pan et al., Nucl. Fusion 58, 096035 (2018)] showed that in a plasma with the density near 1/10 of the critical density, the backscattered light would excite the TPD, which results in suppression of the backward SRS. However, this work further shows that when the laser intensity is so high ( $>{10}^{16}$ W/cm2) that the backward SRS cannot be totally suppressed, filamentation of the EPW and forward side SRS will be excited. Then the TPD of the backscattered light only occurs in the early stage and is suppressed in the latter stage. Electron distribution functions further show that trapped-particle-modulation instability should be responsible for filamentation of the EPW. This research can promote the understanding of hot-electron generation and SRS saturation in inertial confinement fusion experiments.
laser plasma instability inertial confinement fusion high energy density physics particle-in-cell simulation super-hot electrons 
High Power Laser Science and Engineering
2023, 11(6): 06000e76
作者单位
摘要
1 中国科学院西安光学精密机械研究所 阿秒科学与技术研究中心,西安 710119
2 中国科学院大学 光电学院,北京 101408
飞秒磁场脉冲对研究超快磁化、超快退磁、超快磁存储和自旋超快动力学等过程具有重要意义。传统的脉冲磁场受限于脉冲电源性能无法获得毫秒量级以下的超短脉冲磁场,无法研究飞秒尺度的磁动力学过程。利用超短脉冲激光驱动等离子体产生旋转电流是目前产生飞秒磁场脉冲的有效方法。本文利用质点网格法模拟圆偏振拉盖尔高斯光束驱动等离子体中的电子运动从而产生光电流以及飞秒磁脉冲的过程,模拟产生了特斯拉量级的飞秒超短磁脉冲,并系统讨论了驱动激光强度与等离子体密度对磁脉冲的影响。结果表明,脉冲磁场的脉宽与驱动光一致,其强度随着激光场强度、等离子体密度增加而增加。通过本文研究寻找产生飞秒磁脉冲的优化实验参数,有望将超快磁动力学研究推进到飞秒时间尺度。
飞秒磁场脉冲 拉盖尔高斯光束 圆偏振涡旋激光 激光-等离子体相互作用 Particle-In-Cell方法 Femtosecond magnetic field pulses Laguerre Gaussian beam Circularly polarized vortex laser Laser-plasma interactions Particle-In-Cell method 
光子学报
2023, 52(9): 0932001
Author Affiliations
Abstract
1 Helmholtz-Zentrum Dresden – Rossendorf, Dresden, Germany
2 Technische Universität Dresden, Dresden, Germany
3 OncoRay – National Center for Radiation Research in Oncology, Dresden, Germany
4 Ludwig-Maximilians-Universität München, Garching/München, Germany
5 Currently at: Universitätsklinikum Freiburg, Freiburg, Germany
Laser–plasma accelerated (LPA) proton bunches are now applied for research fields ranging from ultra-high-dose-rate radiobiology to material science. Yet, the capabilities to characterize the spectrally and angularly broad LPA bunches lag behind the rapidly evolving applications. The OCTOPOD translates the angularly resolved spectral characterization of LPA proton bunches into the spatially resolved detection of the volumetric dose distribution deposited in a liquid scintillator. Up to 24 multi-pinhole arrays record projections of the scintillation light distribution and allow for tomographic reconstruction of the volumetric dose deposition pattern, from which proton spectra may be retrieved. Applying the OCTOPOD at a cyclotron, we show the reliable retrieval of various spatial dose deposition patterns and detector sensitivity over a broad dose range. Moreover, the OCTOPOD was installed at an LPA proton source, providing real-time data on proton acceleration performance and attesting the system optimal performance in the harsh laser–plasma environment.
laser–plasma acceleration of protons proton detector tomographic reconstruction 
High Power Laser Science and Engineering
2023, 11(6): 06000e68

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