Abstract:
The high energy of the XCELS laser allows the production of a large number of laser-heated/accelerated particles and the products of their initiated nuclear reactions in a large-volume transparent microstructured medium. As an example, the regime of laser–plasma interaction is studied at a moderately relativistic heating-pulse intensity of ∼1018 W·cm–2 in a sufficiently large volume of a microcluster medium, which does not require tight focusing of a high-power laser beam (beams), thereby simplifying the experiment. If it has already been shown previously that for a laser pulse with an energy of ∼1 J, under certain conditions for the geometric and compositional parameters of a deuterium-containing cluster target, it is possible to maximize the yield of hot superponderomotive electrons and explosively accelerated deuterons, then here the approach is extended to a femtosecond laser driver with an energy hundreds of times greater (300–400 J). Recommendations are given for obtaining a record number of laser-heated deuterons of moderate energies (0.2–2 MeV) in a large volume of a cluster medium (heavy water spray) at a level of 1015 particles per shot and for developing a superbright source of thermonuclear DD neutrons with an expected peak flux of ∼1018 neutrons·cm–2·s·–1.
Keywords:
multipetawatt lasers, large-volume transparent microstructured media, laser acceleration of electrons and deuterons, superbright sources of thermonuclear neutrons.
Citation:
D. A. Gozhev, S. G. Bochkarev, M. G. Lobok, A. V. Brantov, V. Yu. Bychenkov, “Pulsed source of charged particles and neutrons based on a 10-petawatt laser system irradiating a microcluster medium”, Kvantovaya Elektronika, 53:3 (2023), 217–223 [Bull. Lebedev Physics Institute, 50:suppl. 7 (2023), S772–S781]
Linking options:
https://www.mathnet.ru/eng/qe18248
https://www.mathnet.ru/eng/qe/v53/i3/p217
This publication is cited in the following 6 articles:
Bull. Lebedev Physics Institute, 51:suppl. 7 (2024), S543–S556
Bull. Lebedev Physics Institute, 51:suppl. 8 (2025), S653–S680
D. A. Gozhev, Bull. Lebedev Phys. Inst., 51:12 (2024), 535
E. A. Khazanov, A. A. Shaikin, I. Yu. Kostyukov, V. N. Ginzburg, I. B. Mukhin, I. V. Yakovlev, A. A. Soloviev, I. I. Kuznetsov, S. Yu. Mironov, A. V. Korzhimanov, D. N. Bulanov, I. A. Shaikin, A. A. Kochetkov, A. A. Kuzmin, M. A. Mart'yanov, V. V. Lozhkarev, M. V. Starodubtsev, A. G. Litvak, A. M. Sergeev, Quantum Electron., 50:suppl. 6 (2023), S635–S640
Efim Khazanov, Andrey Shaykin, Igor Kostyukov, Vladislav Ginzburg, Ivan Mukhin, Ivan Yakovlev, Alexander Soloviev, Ivan Kuznetsov, Sergey Mironov, Artem Korzhimanov, Denis Bulanov, Ilya Shaikin, Anton Kochetkov, Alexey Kuzmin, Mikhail Martyanov, Vladimir Lozhkarev, Mikhail Starodubtsev, Alexander Litvak, Alexander Sergeev, High Pow Laser Sci Eng, 11 (2023)