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Direct Laser Acceleration of Bethe-Heitler positrons in laser-channel interactions

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arxiv 2405.20930 v1 pith:3AWWX4JD submitted 2024-05-31 physics.plasm-ph

classification physics.plasm-ph
keywords laseraccelerationpositronpositronselectronschanneldirectelectron
verification ladder T0 review T1 audit T2 compute T3 formal
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Positron creation and acceleration is one of the major challenges for constructing future lepton colliders. On the one hand, conventional technology can provide a solution, but at a prohibitive cost and scale. On the other hand, alternative, reduced-scale ideas for positron beam generation could bring this dream closer to reality. Here we propose a novel plasma-based positron acceleration method using a powerful laser propagating through a dense and narrow plasma channel. A large amount of electrons is injected within the channel during laser propagation. This electron loading creates static fields in the plasma, enabling positrons to be guided transversely while they directly gain energy from the laser field itself. Within this context, we present a theoretical model to describe how the laser injects the electrons and estimate the beam-loaded effective electron density. We validate our theoretical predictions through Quasi-3D PIC simulations and demonstrate the robustness of this guiding and direct laser acceleration process for positrons. Our approach could pave the way for testing this new positron acceleration scheme at ELI-Beamlines, showcasing unprecedentedly high average energy gain rate of a few TeV/m. The fireball jet produced contains GeV-level electrons, positrons, and x-rays, opening the path towards potential laboratory astrophysics experiments using these beams.

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  1. Improved Bethe-Heitler positron creation and retention by combining direct laser acceleration and solid target interaction within a gas jet

    physics.plasm-ph 2024-11 conditional novelty 5.0 of 10

    Optimized foil placement in a direct-laser-acceleration gas jet increases retained Bethe-Heitler positrons roughly eightfold over an earlier single-stage design.

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