Abstract:
Recent experimental and theoretical investigations are reviewed concerning the generation of fast charged particles and superstrong magnetic fields in the interaction of ultrashort laser pulses with solid targets. The mechanisms of generating fast charged particles in superstrong light fields of laser radiation with intensities ranging from 1017 to 1021 W cm−2 are considered. Electron acceleration due to vacuum heating, the ponderomotive potential, resonance absorption, the laser-driven wake field in the underdense part of plasma, cyclotron mechanism and some other mechanisms are thoroughly analyzed. Experimental data on the acceleration of protons and atomic ions by spatial charge fields on thin and thick solid targets are presented and theoretically interpreted. Particular attention is paid to the generation of superstrong quasistatic magnetic fields in laser plasmas and methods for measuring them under the action of various laser pulses of both femto- and picosecond durations. The possible formation of magnetic plasma configurations and magnetic plasma confinement are discussed.
Citation:
V. S. Belyaev, V. P. Krainov, V. S. Lisitsa, A. P. Matafonov, “Generation of fast charged particles and superstrong magnetic fields in the interaction of ultrashort high-intensity laser pulses with solid targets”, UFN, 178:8 (2008), 823–847; Phys. Usp., 51:8 (2008), 793–814
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\paper Generation of fast charged particles and superstrong magnetic fields in the interaction of ultrashort high-intensity laser pulses with solid targets
\jour UFN
\yr 2008
\vol 178
\issue 8
\pages 823--847
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\crossref{https://doi.org/10.3367/UFNr.0178.200808b.0823}
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\jour Phys. Usp.
\yr 2008
\vol 51
\issue 8
\pages 793--814
\crossref{https://doi.org/10.1070/PU2008v051n08ABEH006541}
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Linking options:
https://www.mathnet.ru/eng/ufn629
https://www.mathnet.ru/eng/ufn/v178/i8/p823
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Eugene Oks, Elisabeth Dalimier, Paulo Angelo, Tatiana Pikuz, “Review of recent analytical advances in the spectroscopy of hydrogenic lines in plasmas”, Open Physics, 22:1 (2024)
V. A. Turikov, “Parametric Decay and Mode Conversion upon Laser-Wave Interaction with Plasma in an Inhomogeneous Magnetic Field”, Plasma Phys. Rep., 50:5 (2024), 659
S. Yu. Gus'kov, “Laser thermonuclear fusion and physics of pulsed plasma with ultrahigh energy density”, Phys. Usp., 67:9 (2024), 888–896
V. S Belyaev, V. S Zagreev, V. P Kraynov, A. P Matafonov, “Prostranstvennaya struktura plazmennykh potokov v magnitnykh polyakh lazernoy plazmy”, Žurnal èksperimentalʹnoj i teoretičeskoj fiziki, 163:3 (2023), 309
E. Oks, P. Angelo, E. Dalimier, “Magnetic-field-caused narrowing of hydrogenic spectral lines under a circularly polarized electromagnetic wave: the analytical solution”, Eur. Phys. J. Plus, 138:10 (2023)
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V. S. Belyaev, V. S. Zagreev, V. P. Krainov, A. P. Matafonov, “Spatial Structure of the Plasma Flows in the Magnetic Fields of Laser Plasma”, J. Exp. Theor. Phys., 136:3 (2023), 269
Sima Alilou, Laya Shahrassai, Samad Sobhanian, “Study of nonlinear interaction of high-power laser with different cross sections with spatially dependent density profile plasmas”, Indian J Phys, 97:13 (2023), 4083
Bull. Lebedev Physics Institute, 50:suppl. 4 (2023), S395–S404
J. Griff-McMahon, J. M. Mikhailova, Conference on Lasers and Electro-Optics, 2022, FF3N.2
Wang F.-P., Han J.-F., Duan W.-Sh., “Modulational Instability of the Coupled Waves Between High-Frequency Magnetosonic Wave and Low-Frequency Magnetosonic Wave”, IEEE Trans. Plasma Sci., 49:1 (2021), 396–400
V. G. Nedorezov, S. G. Rykovanov, A. B. Savel'ev, “Nuclear photonics: results and prospects”, Phys. Usp., 64:12 (2021), 1214–1237
Kumar S. Chauhan P.K. Sharma R.P. Uma R., “Compression of the Laser Pulse in Magnetized Plasma Having Relativistic Regime”, Optik, 242 (2021), 167130
Belyaev V.S., Zagreev V B., Kedrov A.Yu., Kol'chugin A.G., Krainov V.P., Matafonov A.P., “Experimental and Theoretical Study of the Propagation of Proton Beams Under the Action of Laser Radiation With Allowance For Magnetic Reconnection”, J. Exp. Theor. Phys., 133:4 (2021), 396–403
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S. I. Moshkunov, V. Yu. Khomich, “Method of detection and spectrometry of charged particles produced in a superstrong electromagnetic field based on their transport by the magnetic field of a coaxial line”, Phys. Usp., 63:4 (2020), 388–394
Baydachenko V.A., Khramov V.N., Sin'ko D.V., “The Experimental Estimation of Temporal and Power Parameters of the Near-Surface Laser Plasma Forming”, Proceedings of Spie, 11458, ed. Derbov V., Spie-Int Soc Optical Engineering, 2020, 1145808
Turikov V.A., Umnov A.M., “Parametric Interaction of High-Power Laser Radiation With Plasma in a Strong Magnetic Field”, Plasma Phys. Rep., 46:8 (2020), 859–861
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