Electron acceleration and x-ray generation from near-critical-density carbon nanotube foams driven by moderately relativistic lasers

Author:

Pan Zhuo1ORCID,Liu Jianbo1,Wang Pengjie2ORCID,Mei Zhusong1ORCID,Cao Zhengxuan1ORCID,Kong Defeng1ORCID,Xu Shirui1,Liu Zhipeng1ORCID,Liang Yulan1,Peng Ziyang1,Xu Tianqi1ORCID,Song Tan1,Chen Xun1,Wu Qingfan1,Zhang Yujia1,Han Qihang1ORCID,Chen Haoran1,Zhao Jiarui1ORCID,Gao Ying1ORCID,Chen Shiyou1,Zhao Yanying1,Yan Xueqing134,Shou Yinren5ORCID,Ma Wenjun134ORCID

Affiliation:

1. State Key Laboratory of Nuclear Physics and Technology, School of Physics, Peking University 1 , Beijing 100871, China

2. Institute of Radiation Physics, Helmholtz-Zentrum Dresden-Rossendorf 2 , Dresden 01328, Germany

3. Beijing Laser Acceleration Innovation Center 3 , Huairou, Beijing 101400, China

4. Institute of Guangdong Laser Plasma Technology 4 , Baiyun, Guangzhou 510540, China

5. Center for Relativistic Laser Science, Institute for Basic Science 5 , Gwangju 61005, South Korea

Abstract

Direct laser acceleration of electrons in near-critical-density (NCD) carbon nanotube foams (CNFs) has its advantages in the high-efficiency generation of relativistic electrons and broadband x-rays. Here, we report the first simultaneous measurement on the spectra of laser-driven electrons and x-rays from CNFs at moderately relativistic intensities of around 5×1019 W/cm2. The density and thickness of the CNFs were scanned in the experiments, indicating the optimized electron temperature of 5.5 MeV and x-ray critical energy of 5 keV. Two-dimensional particle-in-cell simulations confirm that the electrons, with a temperature significantly higher than the pondermotive scale, are directly accelerated by the laser along the NCD plasma channel, while the bright x-rays are emitted by these electrons through betatron radiation or Thomson backscattering inside the channel. The simultaneously generated electrons and x-rays, automatically synchronized with the femtosecond laser driver, are suitable for applications such as bi-modal radiography.

Funder

National Grand Instrument Project

National Grand Intrument Project

National Science Fund for Distinguished Young Scholars

Publisher

AIP Publishing

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