Author Affiliations
Abstract
1 The Graduate School for the Creation of New Photonics Industries, 1955-1, Kurematsu, Nishiku, Hamamatsu, Japan
2 Faculty of Science and Engineering, Setsunan University, Neyagawa, 572-8508, Osaka, Japan
3 LULI-CNRS, Ecole Polytechnique, CEA: Universite Paris-Saclay, UPMC Univ Paris 06: Sorbonne Universites, F-91128, Palaiseau Cedex, France
4 Instituto de Fusion Nuclear, ETSI de Industriales, Universidad Politecnica de Madrid, C/ Jose Gutierrez Abascal, 2, E-28006, Madrid, Spain
5 LULI - CNRS, Ecole Polytechnique, CEA: Universite Paris-Saclay, UPMC Univ Paris 06: Sorbonne Universites, F-91128, Palaiseau Cedex, France
6 Department of Physics and Astronomy, University of California at Irvine, Irvine, CA, 92697, USA
The collective interaction between intense ion beams and plasmas is studied by simulations and experiments, where an intense proton beam produced by a short pulse laser is injected into a pre-ionized gas. It is found that, depending on its current density, collective effects can significantly alter the propagated ion beam and the stopping power. The quantitative agreement that is found between theories and experiments constitutes the first validation of the collective interaction theory. The effects in the interaction between intense ion beams and background gas plasmas are of importance for the design of laser fusion reactors as well as for beam physics.
Two stream instabilities Two stream instabilities Ultra intense short pulse laser Ultra intense short pulse laser Proton beam Proton beam Wake field Wake field Electron plasma wave Electron plasma wave Laser plasma interaction Laser plasma interaction 
Matter and Radiation at Extremes
2018, 3(3): 127
作者单位
摘要
中国工程物理研究院 激光聚变研究中心, 四川 绵阳 621900
激光驱动中子源由于中子通量高、短脉冲等特点受到广泛关注。通过辐射流体动力学、粒子动力学和蒙特卡罗三种数值模拟程序的组合使用,对超短强激光与铜靶作用产生光核中子进行了全物理过程模拟。首先使用辐射流体动力学程序获得激光预脉冲产生的预等离子体密度分布,然后将预等离子体输入粒子动力学程序获得超短强激光主脉冲产生的超热电子信息,最后将超热电子输入蒙特卡罗程序得到光核中子。模拟获得了光核中子的产额、能谱和角分布信息,发现采用强度1022 W/cm2激光、直径和厚度均为4 cm的Cu圆柱靶,可以获得产额为1.2×108/J的光核中子。
超短强激光 等离子体 中子源 光核反应 intense short-pulse laser plasma neutron source photonuclear reaction 
强激光与粒子束
2016, 28(10): 102002
Author Affiliations
Abstract
1 Department of Advanced Interdisciplinary Sciences, Utsunomiya University, Yohtoh 7-1-2, Utsunomiya 321-8585, Japan
2 CORE (Center for Optical Research and Education), Utsunomiya University, Yohtoh 7-1-2, Utsunomiya 321-8585, Japan
3 School of Computer Engineering and Sciences, Shanghai University, Shanghai 200444, China
4 Institute of Modern Physics, Fudan University, Shanghai 200433, China
5 Department of Physics, National University of Defense Technology, Changsha 410073, China
6 Institute of Physics, Chinese Academy of Sciences, Beijing 100080, China
An ion beam has the unique feature of being able to deposit its main energy inside a human body to kill cancer cells or inside material. However, conventional ion accelerators tend to be huge in size and cost. In this paper, a future intenselaser ion accelerator is discussed to make the laser-based ion accelerator compact and controllable. The issues in the laser ion accelerator include the energy efficiency from the laser to the ions, the ion beam collimation, the ion energy spectrum control, the ion beam bunching, and the ion particle energy control. In the study, each component is designed to control the ion beam quality by particle simulations. The energy efficiency from the laser to ions is improved by using a solid target with a fine sub-wavelength structure or a near-critical-density gas plasma. The ion beam collimation is performed by holes behind the solid target or a multi-layered solid target. The control of the ion energy spectrum and the ion particle energy, and the ion beam bunching are successfully realized by a multi-stage laser–target interaction.
Intense short-pulse laser laser ion acceleration laser ion cancer therapy laser–plasma interaction 
High Power Laser Science and Engineering
2014, 2(1): 010000e4

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