Spatial distribution modulation of laser-accelerated charged particles with micro-tube structures

Author:

Wang Q. S.12,Qin C. Y.23,Zhang H.124ORCID,Li S.2,Li A. X.25,Wang N. W.2,Lu X. M.2,Li J. F.2,Xu R. J.2,Wang C.2,Liang X. Y.24,Leng Y. X.24,Shen B. F.26,Ji L. L.24ORCID

Affiliation:

1. College of Science, University of Shanghai for Science and Technology 1 , Shanghai 200093, China

2. State Key Laboratory of High Field Laser Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences 2 , Shanghai 201800, China

3. Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences 3 , Beijing 100049, China

4. CAS Center for Excellence in Ultra-intense Laser Science 4 , Shanghai 201800, China

5. ShanghaiTech University 5 , Shanghai 201210, China

6. Department of Physics, Shanghai Normal University 6 , Shanghai 200234, China

Abstract

We present experimental studies on the spatial distribution of charged particles using a linearly polarized femtosecond laser interacting with a micro-structure target composed of micro-tube structure and planar foil. For protons, a six-lobed structure was observed in the low-energy region, while a smaller angular divergence was measured in the high-energy region. Electron distribution exhibits a circular distribution at low energies and double-lobed structure at high energies. These results are well reproduced by 3D particle-in-cell simulations, showing that the profile of electrons driven by a laser pulse is manipulated by the micro-tube structure, which maps into the spatial distribution of protons via a strong charge separation field. These results demonstrate the effect of micro-structures on laser-driven particle sources and provide a possible approach for spatial manipulation of the particle beams.

Funder

Strategic Priority Research Program of CAS

National natural science foundation of China

CAS project for young scientists in basic research

Youth Innovation Promotion Association

Publisher

AIP Publishing

Subject

Condensed Matter Physics

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