Radioisotope production using lasers: From basic science to applications

Author:

Rodrigues M. R. D.1ORCID,Bonasera A.12ORCID,Scisciò M.3,Pérez-Hernández J. A.4,Ehret M.4ORCID,Filippi F.3,Andreoli P. L.3,Huault M.5,Larreur H.567,Singappuli D.6,Molloy D.78ORCID,Raffestin D.6ORCID,Alonzo M.3,Rapisarda G. G.29,Lattuada D.1210ORCID,Guardo G. L.2,Verona C.11,Consoli Fe.2,Petringa G.2ORCID,McNamee A.8,La Cognata M.2,Palmerini S.1,Carriere T.6,Cipriani M.3ORCID,Di Giorgio G.3,Cristofari G.3,De Angelis R.3ORCID,Cirrone G. A. P.2,Margarone D.18ORCID,Giuffrida L.12ORCID,Batani D.6ORCID,Nicolai P.6ORCID,Batani K.12,Lera R.4,Volpe L.14ORCID,Giulietti D.13,Agarwal S.14,Krupka M.1ORCID,Singh S.1,Consoli Fa.3ORCID

Affiliation:

1. Cyclotron Institute, Texas A&M University 1 , College Station, Texas 77840, USA

2. Laboratori Nazionali del Sud, Istituto Nazionale di Fisica Nucleare (LNS-INFN) 2 , Catania, Italy

3. ENEA, Fusion and Technologies for Nuclear Safety and Security Department-C 3 , Frascati, Italy

4. Centro de Láseres Pulsados (CLPU) 4 , Villamayor, Spain

5. Universidad de Salamanca 5 , Salamanca, Spain

6. Centre Lasers Intenses et Applications (CELIA), Université de Bordeaux, CNRS, CEA 6 , Talence, France

7. HB11 Energy Holdings Pty 7 , Freshwater, New South Wales, Australia

8. School of Mathematics and Physics, Queen’s University Belfast 8 , Belfast, United Kingdom

9. Dipartimento di Fisica e Astronomia “E. Majorana,” Università di Catania 9 , Catania, Italy

10. Facoltà di Ingegneria e Architettura, Università degli Studi di Enna “Kore 10 ,” Enna, Italy

11. Dipartimento di Ingegneria Industriale, Università di Roma “Tor Vergata 11 ,” Roma, Italy

12. Institute of Plasma Physics and Laser Microfusion (IPPLM) 15 , Warsaw, Poland

13. Dipartimento Fisica, “E. Fermi,” Università di Pisa and INFN 17 , Pisa, Italy

14. FZU–Institute of Physics of Czech Academy of Sciences 18 , Prague, Czech Republic

Abstract

The discovery of chirped pulse amplification has led to great improvements in laser technology, enabling energetic laser beams to be compressed to pulse durations of tens of femtoseconds and focused to a few micrometers. Protons with energies of tens of MeV can be accelerated using, for instance, target normal sheath acceleration and focused on secondary targets. Under such conditions, nuclear reactions can occur, with the production of radioisotopes suitable for medical application. The use of high-repetition lasers to produce such isotopes is competitive with conventional methods mostly based on accelerators. In this paper, we study the production of 67Cu, 63Zn, 18F, and 11C, which are currently used in positron emission tomography and other applications. At the same time, we study the reactions 10B(p,α)7Be and 70Zn(p,4n)67Ga to put further constraints on the proton distributions at different angles, as well as the reaction 11B(p,α)8Be relevant for energy production. The experiment was performed at the 1 PW laser facility at Vega III in Salamanca, Spain. Angular distributions of radioisotopes in the forward (with respect to the laser direction) and backward directions were measured using a high purity germanium detector. Our results are in reasonable agreement with numerical estimates obtained following the approach of Kimura and Bonasera [Nucl. Instrum. Methods Phys. Res., Sect. A 637, 164–170 (2011)].

Funder

EUROfusion

European Cooperation in Science and Technology

U.S. Department of Energy

Publisher

AIP Publishing

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Simulation of nuclear isomer production in laser-induced plasma;Matter and Radiation at Extremes;2024-08-08

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