Improved Bethe-Heitler positron creation and retention by combining direct laser acceleration and solid target interaction within a gas jet
Lucas I. I\~nigo Gamiz, Robert Babjak, Bertrand Martinez, Marija, Vrani\'c

TL;DR
This paper introduces a novel single-stage method combining direct laser acceleration and solid target interaction within a gas jet to significantly improve positron creation and retention using Petawatt-class lasers.
Contribution
It presents a semi-analytical model and PIC simulations demonstrating enhanced positron retention and production, surpassing previous configurations in beam quality and quantity.
Findings
Achieved 8-fold increase in positron retention.
Demonstrated charge inversion leading to positron trapping.
Optimized parameters for improved positron generation.
Abstract
The next generation of Petawatt-class lasers presents the opportunity to study positron production and acceleration experimentally, in an all-optical setting. Several configurations were proposed to produce and accelerate positrons in a single laser stage. However, these configurations have yielded limited positron beam quality and low particle count. This paper presents methods for improving the injection and retention of positrons obtained via Bethe-Heitler pair production and accelerated using direct laser acceleration (DLA) in a plasma channel. The work first introduces a semi-analytical model which predicts laser energy depletion in this highly nonlinear regime. We demonstrate through PIC simulations that accelerated electrons can induce charge inversion within the channel, leading to positron trapping and acceleration. We investigate how laser focusing position, channel wall…
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Taxonomy
TopicsLaser-Plasma Interactions and Diagnostics · Atomic and Molecular Physics · Laser-induced spectroscopy and plasma
