Electron reflux dynamics in relativistically transparent plasma

Author:

Zhao Yuan1234,Lu Haiyang234ORCID,Zhou Cangtao234,Zhang Chunxiang234ORCID,Liao Meihua234,Chen Hailong234,Zou Zhengyu234,Shang Mengchen234,Yin Siyuan234

Affiliation:

1. College of Optoelectronic Engineering, Shenzhen University 1 , Shenzhen 518060, People’s Republic of China

2. Center for Advanced Material Diagnostic Technology, and College of Engineering Physics, Shenzhen Technology University 2 , Shenzhen 518118, People’s Republic of China

3. Shenzhen Key Laboratory of Ultraintense Laser and Advanced Material Technology 3 , , Shenzhen 518118, People’s Republic of China

4. Shenzhen Technology University 3 , , Shenzhen 518118, People’s Republic of China

Abstract

The electron re-injection effect has revealed the great probability rate of photon generation due to the head-on collision between relativistic electrons and laser. We study the electron re-injection dynamics when the ultra-intense laser irradiates the near-critical-density plasma and successfully controls the photon radiation by means of the transversely tailored plasma. Starting from the relativistic corrected ponderomotive force, the critical strength of the laser field required by the refluxing effect is theoretically obtained. Then, the theoretical description of the wavefront formed by electron refluxing is given via plugging in the difference in the transverse phase velocity of the plasma wave. Simulation results display a curved surface of the refluxing electrons, which are in good agreement with the calculation results stemming from the physics model. The re-built phase space of the refluxing electrons illustrates that they gain energy mainly from the longitudinal electrostatic field on the re-injection path. Despite the energy of the refluxing electron being relatively low, it could radiate more photons via more efficient non-linear Compton scattering than the electron being accelerated in the positive direction. Furthermore, we employ a transverse density profile in the plasma and successfully achieve control of the electron re-injection effect and the properties of the resultant photons as well. Simulation results exhibit that overcritical electron beams are successively re-injected from the plasma density peaks. These backward electrons emit photons along the two maximal plasma densities as they collide with the laser pulse. Although the quality of the photons is not improved, their spatial distribution is changed, which is a big step toward manipulating light sources.

Funder

China Postdoctoral Science Foundation

National Natural Science Foundation of China

Shenzhen Fundamental Research Program

Guangdong Basic and Applied Basic Research Foundation

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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