Ultra-intense vortex laser generation from a seed laser illuminated axial line-focused spiral zone plate

Author:

Zhang Hao,Li Qianni,Zheng Chenglong1ORCID,Zhao Jie,Lu YuORCID,Li DongaoORCID,Xu Xinrong,Liu Ke,Tian Ye2,Lin Yuliang3,Zhang Fangpei4,Yu TongpuORCID

Affiliation:

1. Tianjin University

2. Shanghai Institute of Optics and Fine Mechanics

3. National University of Defense Technology

4. Information Science Academy of China Electronics Technology Group Corporation

Abstract

Relativistic vortex laser has drawn increasing attention in the laser-plasma community owing to its potential applications in various domains, e.g., generation of energetic charged particles with orbital angular momentum (OAM), high OAM X/γ-ray emission, high harmonics generation, and strong axial magnetic-field production. However, the generation of such relativistic vortex laser is still a challenge to the current laser technology. Using micro-structure targets named axial line-focused spiral zone plate (ALFSZP), we propose a novel scheme for ultra-intense vortex laser generation. In the scheme, a relativistic Gaussian laser pulse irradiates an ALFSZP, and diffracts as it passes through the ALFSZP. Due to the focusing and radial Hilbert transform capabilities of the ALFSZP, the seed laser is converted efficiently to a vortex one which is then well focused in a tunable focal volume. Three-dimensional particle-in-cell simulations indicate that using a seed laser pulse with intensity of 1.3 × 1020 W/cm2, the vortex laser intensity achieved is as high as 1.3 × 1021 W/cm2 with the averaged angular momentum per photon up to 0.73 , promising diverse applications in various fields aforementioned.

Funder

Hunan Provincial Innovation Foundation for Postgraduate

Research Project of NUDT

Natural Science Foundation of Hunan Province

The Open Fund of the State Key Laboratory of High Field Laser Physics

Science and Technology Innovation Program of Hunan Province

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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