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High-Yield High-Efficiency Positron Generation in High-Z Metal Targets Irradiated by Laser Produced Electrons from Near-Critical Density Plasmas

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【作者】 宋炜胡荣豪寿寅任弓正余金清林晨马文君赵研英卢海洋颜学庆

【Author】 Wei Song;Rong-Hao Hu;Yin-Ren Shou;Zheng Gong;Jin-Qing Yu;Chen Lin;Wen-Jun Ma;Yan-Yin Zhao;Hai-Yang Lu;Xue-Qing Yan;State Key Laboratory of Nuclear Physics and Technology, and Key Laboratory of HEDP of the Ministry of Education,CAPT, Peking University;Collaborative Innovation Center of Extreme Optics,Shanxi University;

【机构】 State Key Laboratory of Nuclear Physics and Technology, and Key Laboratory of HEDP of the Ministry of Education,CAPT, Peking UniversityCollaborative Innovation Center of Extreme Optics,Shanxi University

【摘要】 An improved indirect scheme for laser positron generation is proposed. The positron yields in high-Z metal targets irradiated by laser produced electrons from near-critical density plasmas and underdense plasma are investigated numerically. It is found that the positron yield is mainly affected by the number of electrons of energies up to several hundreds of MeV. Using near-critical density targets for electron acceleration, the number of high energy electrons can be increased dramatically. Through start-to-end simulations, it is shown that up to 6.78 x 1010 positrons can be generated with state-of-the-art Joule-class femtosecond laser systems.

【Abstract】 An improved indirect scheme for laser positron generation is proposed. The positron yields in high-Z metal targets irradiated by laser produced electrons from near-critical density plasmas and underdense plasma are investigated numerically. It is found that the positron yield is mainly affected by the number of electrons of energies up to several hundreds of MeV. Using near-critical density targets for electron acceleration, the number of high energy electrons can be increased dramatically. Through start-to-end simulations, it is shown that up to 6.78 x 1010 positrons can be generated with state-of-the-art Joule-class femtosecond laser systems.

【基金】 Supported by the National Basic Research Program of China under Grant No 2013CBA01502;the National Natural Science Foundation of China under Grant Nos 11575011 and 11535001;the National Grand Instrument Project under Grant No2012YQ030142;the UK EPSRC under Grant Nos EP/G054950/1,EP/G056803/1,EP/G055165/1 and EP/M022463/1
  • 【文献出处】 Chinese Physics Letters ,中国物理快报(英文版) , 编辑部邮箱 ,2017年08期
  • 【分类号】O53;TN24
  • 【被引频次】1
  • 【下载频次】30
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