High Power Laser Science and Engineering, Volume. 4, Issue 3, 03000e23(2016)
Raman–Brillouin interplay for inertial confinement fusion relevant laser–plasma interaction
Fig. 1. Reflectivity evolution: backscattered intensity normalized to incident intensity. The subfigures correspond to the following cases in Table
Fig. 2. Parallel electron distribution functions. (a) Case IV for the times:
Fig. 3. Reflectivity evolution showing the effect of ion mass and electron temperature
Fig. 4. Electron distribution functions for the case VII. (a) Snapshots averaged over the whole plasma slab. (b) Time resolved for a plasma slice of width
Fig. 5. Logarithm of the frequency spectra (case VII) for backscattered light (a) and transmitted light (b). (a) The peaks 1 (
Fig. 6. Logarithm of the
Fig. 7.
Fig. 8. Electron (a, d) and ion (b, e)
Fig. 9. The ion
Fig. 10.
Fig. 11. Snapshots of the electron (red) and ion (blue) phase space for the run VI:
Fig. 12. Blow-up of the ion phase space at times
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C. Riconda, S. Weber. Raman–Brillouin interplay for inertial confinement fusion relevant laser–plasma interaction[J]. High Power Laser Science and Engineering, 2016, 4(3): 03000e23
Special Issue: HIGH ENERGY DENSITY PHYSICS AND HIGH POWER LASER
Received: Apr. 15, 2016
Accepted: May. 18, 2016
Published Online: Nov. 7, 2016
The Author Email: C. Riconda (caterina.riconda@upmc.fr)