Generation of isolated and polarized γ-ray pulse by few-cycle laser irradiating a nanofoil

Author:

Zhang Liang-QiORCID,Liu Ke,Tang Suo,Luo WenORCID,Zhao Jie,Zhang Hao,Yu Tong-PuORCID

Abstract

Abstract An isolated ultra-short γ-ray pulse is a unique tool for measuring ultrafast-physics processes, such as imaging intra-nuclear dynamics and inner-shell electron dynamics. Here, we propose an all-optical efficient scheme for generating isolated ultra-short γ-ray pulse from a laser-driven nanofoil. When a few-cycle circularly polarized laser pulse with an intensity of 1022 W cm−2 irradiates a nanofoil, the electrons in the nanofoil are pushed forwards collectively, forming a single relativistic electron sheet (RES) with a charge of nC. The electrons are substantially accelerated to high energies by the super-ponderomotive force of the laser. Then, a counter-propagating laser pulse with a peak intensity of 1021 W cm−2 collides with the RES, resulting in the generation of an isolated sub-femtosecond γ-ray pulse via nonlinear Compton scattering. The effect of laser polarization on the polarization degree of γ-rays is investigated by using a proof-of-principle calculation. It is shown that a highly polarized isolated γ-ray pulse with a cut-off energy of 100 MeV can eventually be generated in a head-on collision configuration when the scattering laser is linearly polarized. Such an isolated ultra-short polarized γ-ray source would provide critical applications in high-energy physics, laboratory astrophysics and nuclear physics.

Funder

the Natural Science Foundation of Hunan Province

Science and Technology Innovation Program of Hunan Province

Hengyang Municipal Science and Technology Projec

Inde- pendent research project of key laboratory of plasma physics, CAEP

Hunan Provincial Research and Innovation Foundation for Graduate Student of China

Research Project of NUDT

National Natural Science Foundation of China

the National Key Research and Development Program of China

Publisher

IOP Publishing

Subject

Condensed Matter Physics,Nuclear Energy and Engineering

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