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Accurate spectra for high energy ions by advanced time-of-flight diamond-detector schemes in experiments with high energy and intensity lasers

Authors :
M. Ferrario
Fabrizio Consoli
G. Cristofari
Arie Zigler
M. Cipriani
M. Salvadori
Maria Pia Anania
P. Andreoli
G. Di Giorgio
Mauro Migliorati
G. Costa
Danilo Giulietti
Patrizio Antici
Fabrizio Bisesto
Claudio Verona
Riccardo Pompili
Mario Galletti
R. De Angelis
Salvadori, M.
Consoli, F.
Verona, C.
Cipriani, M.
Anania, M. P.
Andreoli, P.
Antici, P.
Bisesto, F.
Costa, G.
Cristofari, G.
De Angelis, R.
DI GIORGIO, Giorgio
Ferrario, M.
Galletti, M.
Giulietti, D.
Migliorati, M.
Pompili, R.
Zigler, A.
Source :
Scientific Reports, Scientific Reports, Vol 11, Iss 1, Pp 1-16 (2021)
Publication Year :
2021

Abstract

Time-Of-Flight (TOF) methods are very effective to detect particles accelerated in laser-plasma interactions, but they shows significant limitations when used in experiments with high energy and intensity lasers, where both high-energy ions and remarkable levels of ElectroMagnetic Pulses (EMPs) in the radiofrequency-microwave range are generated. Here we describe a novel advanced diagnostic method for the characterization of protons accelerated by intense matter interactions with high-energy and high-intensity ultra-short laser pulses up to the femtosecond and even future attosecond range. The method employs a stacked diamond detector structure and the TOF technique, featuring high sensitivity, high resolution, high radiation hardness and high signal-to-noise ratio in environments heavily affected by remarkable EMP fields. A detailed study on the use, the optimization and the properties of a single module of the stack is here also described for an experiment where a fast diamond detector is employed in an highly EMP-polluted environment. Accurate calibrated spectra of accelerated protons are presented from an experiment with the femtosecond Flame laser (beyond 100 TW power and ~$10^{19}$ W/cm$^2$ intensity) interacting with thin foil targets. The results that can be readily applied to the case of complex stack configurations and to more general experimental conditions.<br />Comment: 19 pages, 8 figures

Details

ISSN :
20452322
Database :
OpenAIRE
Journal :
Scientific Reports
Accession number :
edsair.doi.dedup.....3e7987e826a14666a63b1f043d70ffa1
Full Text :
https://doi.org/10.1038/s41598-021-82655-w