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Dense positrons and γ-rays generation by lasers interacting with convex target
作者单位:Key Laboratory of Beam Technology of the Ministry of Education,and College of Nuclear Science and Technology,Beijing Normal University,Beijing 100875,People's Republic of China;Key Laboratory of Beam Technology of the Ministry of Education,and College of Nuclear Science and Technology,Beijing Normal University,Beijing 100875,People's Republic of China;Beijing Radiation Center,Beijing 100875,People's Republic of China;Key Laboratory for Laser Plasmas(MOE),School of Physics and Astronomy,Shanghai Jiaotong University,Shanghai 200240,People's Republic of China;IFSA Collaborative Innovation Center,Shanghai Jiaotong University,Shanghai 200240,People's Republic of China
基金项目:We thank Dr Mamutjan Ababekri and Dr Amir H Sanjari for their critical reading of the paper.We are also grateful to Dr Feng Wan for his valuable discussion on this paper.This work was supported by National Natural Science Foundation of China(NSFC)under Grant
摘    要:We use quantum electrodynamics particle-in-cell simulation to study the generation of dense electron–positron plasma and strong γ-ray bursts in counter-propagating laser beam interactions with two different solid targets, i.e. planar(type I) and convex(type II). We find that type II limits fast electron flow most effectively. while the photon density is increased by about an order of magnitude and energy by approx. 10%–20% compared with those in type I target. γ-photon source with an ultrahigh peak brilliance of 2?×?1025 photons/s/mm2/mrad2/0.1% BW is generated by nonlinear Compton scattering process. Furthermore, use of type II target increases the positron density and energy by 3 times and 32% respectively, compared with those in type I target. In addition, the conversion efficiencies of total laser energy to γ-rays and positrons of type II are improved by 13.2% and 9.86% compared with type I. Such improvements in conversion efficiency and positron density are envisaged to have practical applications in experimental field.

收稿时间:2020-04-30
修稿时间:2020-11-12
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