Laser ion acceleration from concave targets by subpicosecond pulses
K. V. Lezhnin, V. Ospina-Boh\'orquez, J. Griff-McMahon, K. Bhutwala, R. Nedbailo, R. Davis, X. Vaisseau, I. D. Kaganovich, S. Malko

TL;DR
This study uses numerical simulations to analyze how subpicosecond laser pulses accelerate and focus protons from hemispherical targets, revealing linear scaling laws and the dominant acceleration mechanisms involved.
Contribution
It provides new insights into proton focusing mechanisms and scaling laws for concave targets under ultrashort laser pulses, based on detailed Particle-In-Cell simulations.
Findings
Proton focal spot size scales linearly with hemisphere radius.
Target Normal Sheath Acceleration is the dominant mechanism.
Focal plane position is downstream of the geometrical center.
Abstract
Laser-driven proton acceleration provides a powerful route for generating ultrashort, high-charge proton beams. Many applications, including secondary neutron sources and inertial fusion, benefit from tight proton beam focusing. Concave targets offer a robust solution, yet the scaling of proton focusing with laser and target parameters remains poorly understood. Here, we present a numerical study of laser-driven proton acceleration and focusing from hemispherical targets using the fully kinetic, relativistic Particle-In-Cell code EPOCH. We focus on the sub-picosecond laser-pulse regime (duration fs), centering on the laser parameters of our recent experiment at the CSU ALEPH laser facility. We investigate the proton acceleration mechanisms, characterize proton focusing, and assess how focal spot parameters scale with laser and target parameters. We identify Target Normal…
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Taxonomy
TopicsLaser-Plasma Interactions and Diagnostics · Laser-Matter Interactions and Applications · Particle Accelerators and Free-Electron Lasers
