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Laser-driven proton acceleration via excitation of surface plasmon polaritons into TiO(2)nanotube array targets

Academic Article
Publication Date:
2020
abstract:
In this paper we report the measurement of laser-driven proton acceleration obtained by irradiating nanotube array targets with ultrashort laser pulses at an intensity in excess of 10(20)W cm(-2). The energetic spectra of forward accelerated protons show a larger flux and a higher proton cutoff energy if compared to flat foils of comparable thickness. Particle-In-Cell 2D simulations reveal that packed nanotube targets favour a better laser-plasma coupling and produce an efficient generation of fast electrons moving through the target. Due to their sub-wavelength size, the propagation of e.m. field into the tubes is made possible by the excitation of Surface Plasmon Polaritons, travelling down to the end of the target and assuring a continuous electron acceleration. The higher amount and energy of these electrons result in turn in a stronger electric sheath field on the rear surface of the target and in a more efficient acceleration of the protons via the target normal sheath acceleration mechanism.
Iris type:
01.01 Articolo in rivista
Keywords:
relativistic laser plasma interaction; high-fields plasmonics; ion acceleration; nanostructured targets
List of contributors:
Gizzi, LEONIDA ANTONIO; D'Arrigo, GIUSEPPE ALESSIO MARIA; Cristoforetti, Gabriele; Labate, LUCA UMBERTO; Brandi, Fernando; Fulgentini, Lorenzo; Baffigi, Federica
Authors of the University:
BAFFIGI FEDERICA
BRANDI FERNANDO
CRISTOFORETTI GABRIELE
D'ARRIGO GIUSEPPE ALESSIO MARIA
FULGENTINI LORENZO
GIZZI LEONIDA ANTONIO
LABATE LUCA UMBERTO
Handle:
https://iris.cnr.it/handle/20.500.14243/397643
Published in:
PLASMA PHYSICS AND CONTROLLED FUSION (PRINT)
Journal
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URL

https://iopscience.iop.org/article/10.1088/1361-6587/abb5e3
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