High current well-directed beams of super-ponderomotive electrons for laser driven nuclear physics applications
O. N. Rosmej, M. Gyrdymov, M. M. G\"unther, N. E. Andreev, P. Tavana,, P. Neumayer, S. Z\"ahter, N. Zahn, V. S. Popov, N. G. Borisenko, A., Kantsyrev, A. Skobliakov, V. Panyushkin, A. Bogdanov, F. Consoli, X. F. Shen,, A. Pukhov

TL;DR
This paper demonstrates that using low-density polymer foams with super-sonic ionization enhances laser-driven electron acceleration, producing high-current, well-directed super-ponderomotive electrons suitable for nuclear physics applications.
Contribution
The study introduces a novel method employing polymer foams for improved direct laser acceleration of electrons, achieving higher energies and better beam directionality at moderate laser intensities.
Findings
Achieved electron energies up to 100 MeV in laser propagation direction.
Produced electron beams with up to 50 nC charge and 6% laser-to-electron energy conversion efficiency.
Demonstrated significant differences in electron spectra compared to ultra-relativistic laser interactions with metallic foils.
Abstract
We report on new findings in a laser driven enhanced electron beam generation in the multi MeV energy range at moderate relativistic laser intensities and their applications. In our experiment, an intense sub-picosecond laser pulse propagates through a plasma of a near critical electron density (NCD) and direct laser acceleration (DLA) of electrons takes place. The breakthrough toward high current relativistic electron beams became possible due to application of low density polymer foams of sub-mm thickness. In foams, the NCD-plasma was produced by a mechanism of super-sonic ionization. Compared to NCD-plasmas generated by laser irradiation of conventional foils, the DLA acceleration path in foams was strongly enhanced. Measurements resulted into 11{\div}13 MeV of the effective electron temperature and up to 100 MeV maximum of the electron energy measured in the laser pulse propagation…
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Taxonomy
TopicsLaser-Plasma Interactions and Diagnostics · Laser-induced spectroscopy and plasma · Laser-Matter Interactions and Applications
