• Matter and Radiation at Extremes
  • Vol. 6, Issue 5, 054404 (2021)
V. A. Astapenko1, F. B. Rosmej1、2、3、4, and E. S. Khramov1、a)
Author Affiliations
  • 1Moscow Institute of Physics and Technology (National Research University), Institutskii per. 9, 141701 Dolgoprudny, Russia
  • 2Sorbonne University, Faculty of Science and Engineering, UMR 7605, Case 128, 4 Place Jussieu, F-75252 Paris Cedex 05, France
  • 3LULI, Ecole Polytechnique, CEA, CNRS, Laboratoire pour l’Utilisation des Lasers Intenses, Physique Atomique dans les Plasmas Denses, F-91128 Palaiseau, France
  • 4National Research Nuclear University MEPhI (Moscow Engineering Physics Institute), Kashirskoe sh. 31, 115409 Moscow, Russia
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    DOI: 10.1063/5.0065835 Cite this Article
    V. A. Astapenko, F. B. Rosmej, E. S. Khramov. Scattering of ultrashort laser pulses on plasmons in a Maxwellian plasma[J]. Matter and Radiation at Extremes, 2021, 6(5): 054404 Copy Citation Text show less
    Variation of the electron part of the dynamic plasma form-factor spectrum with changes in parameters that influence α: (a) scattering angle; (b) plasma temperature; (c) and (d) plasma density. The incident radiation frequency ωi = 2 eV.
    Fig. 1. Variation of the electron part of the dynamic plasma form-factor spectrum with changes in parameters that influence α: (a) scattering angle; (b) plasma temperature; (c) and (d) plasma density. The incident radiation frequency ωi = 2 eV.
    Spectra of incident pulses with various durations (red curves) and differential scattering cross-section at Te = 2 eV, ne = 1017 cm−3, ω′ = 2.1 eV, and θ = π/4 (blue curves).
    Fig. 2. Spectra of incident pulses with various durations (red curves) and differential scattering cross-section at Te = 2 eV, ne = 1017 cm−3, ω′ = 2.1 eV, and θ = π/4 (blue curves).
    Dependence of the differential scattering probability on the pulse duration for different values of the carrier frequency. Different trends are illustrated in the different panels: (a) a bell-shape maximum with an asymptote tending to zero; (b) a monotonic rise; (c) and (d) a nonmonotonic rise, tending to the linear regime. The parameter values are Te = 2 eV, ne = 1017 cm−3, ω′ = 2.1 eV, and θ = π/4. Solid lines correspond to calculation using the formula (3.3) and dashed lines to calculation using the approximations (4.7) and (4.9).
    Fig. 3. Dependence of the differential scattering probability on the pulse duration for different values of the carrier frequency. Different trends are illustrated in the different panels: (a) a bell-shape maximum with an asymptote tending to zero; (b) a monotonic rise; (c) and (d) a nonmonotonic rise, tending to the linear regime. The parameter values are Te = 2 eV, ne = 1017 cm−3, ω′ = 2.1 eV, and θ = π/4. Solid lines correspond to calculation using the formula (3.3) and dashed lines to calculation using the approximations (4.7) and (4.9).
    Types of τ dependence for different values of the carrier frequency.
    Fig. 4. Types of τ dependence for different values of the carrier frequency.
    Carrier-frequency dependence of the duration corresponding to the maximum scattering probability.
    Fig. 5. Carrier-frequency dependence of the duration corresponding to the maximum scattering probability.
    V. A. Astapenko, F. B. Rosmej, E. S. Khramov. Scattering of ultrashort laser pulses on plasmons in a Maxwellian plasma[J]. Matter and Radiation at Extremes, 2021, 6(5): 054404
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