SiC Measurements of Electron Energy by fs Laser Irradiation of Thin Foils

Author:

Torrisi Lorenzo1ORCID,Cutroneo Mariapompea2ORCID,Torrisi Alfio34ORCID

Affiliation:

1. Department of Mathematics and Computer Sciences, Physical Sciences and Earth Sciences (MIFT), University of Messina, V.le F.S. D’Alcontres 31, 98166 Messina, Italy

2. Nuclear Physics Institute of the CAS, Hlavní 130, 250 68 Husinec-Řež, Czech Republic

3. Dipartimento Interateneo di Fisica, Università di Bari “Aldo Moro”, 70125 Bari, Italy

4. Istituto Nazionale di Fisica Nucleare (INFN), Sezione di Bari, 70126 Bari, Italy

Abstract

SiC detectors based on a Schottky junction represent useful devices to characterize fast laser-generated plasmas. High-intensity fs lasers have been used to irradiate thin foils and to characterize the produced accelerated electrons and ions in the target normal sheath acceleration (TNSA) regime, detecting their emission in the forward direction and at different angles with respect to the normal to the target surface. The electrons’ energies have been measured using relativistic relationships applied to their velocity measured by SiC detectors in the time-of-flight (TOF) approach. In view of their high energy resolution, high energy gap, low leakage current, and high response velocity, SiC detectors reveal UV and X-rays, electrons, and ions emitted from the generated laser plasma. The electron and ion emissions can be characterized by energy through the measure of the particle velocities with a limitation at electron relativistic energies since they proceed at a velocity near that of the speed of light and overlap the plasma photon detection. The crucial discrimination between electrons and protons, which are the fastest ions emitted from the plasma, can be well resolved using SiC diodes. Such detectors enable the monitoring of the high ion acceleration obtained using high laser contrast and the absence of ion acceleration using low laser contrast, as presented and discussed.

Funder

Czech Science Foundation

OP RDE, MEYS

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Control and Systems Engineering

Reference38 articles.

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2. Optimization of laser parameters for proton acceleration using double laser pulses in TNSA mechanism;Kumar;Laser Part. Beams,2020

3. Borghesi, M. (2019). Laser-Driven Sources of High Energy Particles and Radiation, Proceedings of “Capri” Advanced Summer School, Capri, Italy, 2–6 September 2018, Springer.

4. Diagnostics of laser accelerated ion beams for the ELIMED project;Torrisi;AIP Conf. Proc.,2013

5. Ion Acceleration and D-D Nuclear Fusion in Laser-Generated Plasma from Advanced Deuterated Polyethylene;Torrisi;Molecules,2014

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