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Generation of high energy laser-driven electron and proton sources with the 200 TW system VEGA 2 at the Centro de Laseres Pulsados

Published online by Cambridge University Press:  26 April 2019

L. Volpe*
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain Laser-Plasma Chair at the University of Salamanca, Salamanca, Spain
R. Fedosejevs
Affiliation:
Department of Electrical and Computer Engineering, University of Alberta, Edmonton, Alberta T6G 2V4, Canada
G. Gatti
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
J. A. Pérez-Hernández
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
C. Méndez
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
J. Apiñaniz
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
X. Vaisseau
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
C. Salgado
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain University of Salamanca, Salamanca, Spain
M. Huault
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain University of Salamanca, Salamanca, Spain
S. Malko
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain University of Salamanca, Salamanca, Spain
G. Zeraouli
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain University of Salamanca, Salamanca, Spain
V. Ospina
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain University of Salamanca, Salamanca, Spain
A. Longman
Affiliation:
Department of Electrical and Computer Engineering, University of Alberta, Edmonton, Alberta T6G 2V4, Canada
D. De Luis
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
K. Li
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
O. Varela
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
E. García
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
I. Hernández
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
J. D. Pisonero
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
J. García Ajates
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
J. M. Alvarez
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
C. García
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
M. Rico
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
D. Arana
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
J. Hernández-Toro
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain
L. Roso
Affiliation:
Centro de Laseres Pulsados (CLPU), Edicio M5. Parque Cientco. C/ Adaja, 8. 37185 Villamayor, Salamanca, Spain University of Salamanca, Salamanca, Spain
*
Correspondence to: L. Volpe, Centro de Laseres Pulsados (CLPU), Edificio M5, Parque Cientifico. C/Adaja, 8. 37185 Villamayor, Salamanca, Spain. Email: lvolpe@clpu.es

Abstract

The Centro de Laseres Pulsados in Salamanca, Spain has recently started operation phase and the first user access period on the 6 J 30 fs 200 TW system (VEGA 2) already started at the beginning of 2018. In this paper we report on two commissioning experiments recently performed on the VEGA 2 system in preparation for the user campaign. VEGA 2 system has been tested in different configurations depending on the focusing optics and targets used. One configuration (long focal length $F=130$ cm) is for underdense laser–matter interaction where VEGA 2 is focused onto a low density gas-jet generating electron beams (via laser wake field acceleration mechanism) with maximum energy up to 500 MeV and an X-ray betatron source with a 10 keV critical energy. A second configuration (short focal length $F=40$ cm) is for overdense laser–matter interaction where VEGA 2 is focused onto a $5~\unicode[STIX]{x03BC}\text{m}$ thick Al target generating a proton beam with a maximum energy of 10 MeV and temperature of 2.5 MeV. In this paper we present preliminary experimental results.

Information

Type
Research Article
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution, and reproduction in any medium, provided the original work is properly cited.
Copyright
© The Author(s) 2019
Figure 0

Figure 1. Schematic of the three VEGA systems.

Figure 1

Figure 2. Contrast of VEGA 2, measured by Sequioa.

Figure 2

Figure 3. Long focal experimental setup.

Figure 3

Figure 4. Typical broad electron spectrum measured with 1.2 Tesla magnetic spectrometer; inset: filtered image of measured electron energy spectrum.

Figure 4

Figure 5. Short focal experimental setup.

Figure 5

Figure 6. Normalized reflection of the probe at the target for different time delays with VEGA 2. Dotted lines are guides for eyes.

Figure 6

Figure 7. RCF stack design and experimental results.

Figure 7

Figure 8. Proton spectrum obtained by both RCF (histogram) and ToF (continuous line) measurements for the same series of shots (by using special holed RCFs). Inset: example of typical proton spectrum obtained by ToF detection with maximum energy around 10 MeV.

Figure 8

Figure 9. Proton radiography of (starting from left) a piece of leaf, a wing, a metallic grid and a CLPU metallic logo. The final image of the logo appears in the first RCF layer to be in a 20 mm $\times$ 100 mm area which, according to the geometrical magnification $M\sim 4$, reproduces correctly the original dimensions of the logo which is 5 mm $\times$ 20 mm.

Figure 9

Figure 10. KB microscope setup. Inset (top right): image of the $K_{\text{alpha}}$ emission from fast electron beam travelling into the $6~\unicode[STIX]{x03BC}\text{m}$ Al target. Inset (bottom right): magnified radiography of a calibration grid.

Figure 10

Figure 11. Example of experimental data for different diagnostics in place: (red, diamond points) maximum proton energy from pin diode ToF measurement, (blue, star points) maximum proton energy from MCP TOF measurements, (orange, circle points) laser energy and (purple, triangle points) $K_{\text{alpha}}$ integrated signal from KB X-ray focusing system. The lines are guides for eyes.