Laser–plasma interactions in ignition‐scale hohlraum plasmas

Scattering of laser light by stimulated Brillouin scattering (SBS) and stimulated Raman scattering (SRS) is a concern for indirect drive inertial confinement fusion (ICF). The hohlraum designs for the National Ignition Facility (NIF) raise particular concerns due to the large scale and homogeneity of the plasmas within them. Experiments at Nova have studied laser–plasma interactions within large scale length plasmas that mimic many of the characteristics of the NIF hohlraum plasmas. Filamentation and scattering of laser light by SBS and SRS have been investigated as a function of beam smoothing and plasma conditions. Narrowly collimated SRS backscatter has been observed from low density, low‐Z, plasmas, which are representative of the plasma filling most of the NIF hohlraum. SBS backscatter is found to occur in the high‐Z plasma of gold ablated from the wall. Both SBS and SRS are observed to be at acceptable levels in experiments using smoothing by spectral dispersion (SSD).

[1]  Peter A. Amendt,et al.  Gas‐filled targets for large scale‐length plasma interaction experiments on Nova , 1995 .

[2]  Kunioki Mima,et al.  Random Phasing of High-Power Lasers for Uniform Target Acceleration and Plasma-Instability Suppression , 1984 .

[3]  Erlan S. Bliss,et al.  Nova experimental facility (invited) , 1986 .

[4]  J. Moody,et al.  X‐ray imaging of uniform large scale‐length plasmas created from gas‐filled targets on Nova , 1995 .

[5]  W. Kruer Intense laser plasma interactions: From Janus to Nova , 1991 .

[6]  R. Craxton,et al.  Nonlinear laser–matter interaction processes in long‐scale‐length plasmas , 1992 .

[7]  J. Moody,et al.  Production and characterization of large plasmas from gas bag targets on Nova , 1995 .

[8]  R. Berger,et al.  Effect of plasma noise spectrum on stimulated scattering in inhomogeneous plasma , 1989 .

[9]  A. J. Morgan,et al.  Random phase plates for beam smoothing on the Nova laser. , 1993, Applied optics.

[10]  J. Moody,et al.  Beam smoothing effects on the stimulated Brillouin scattering (SBS) instability in Nova exploding foil plasmas , 1995 .

[11]  O. Willi,et al.  Study of instabilities in long scale‐length plasmas with and without laser‐beam‐smoothing techniques , 1990 .

[12]  C. Labaune,et al.  Filamentation in long scale length plasmas: Experimental evidence and effects of laser spatial incoherence , 1992 .

[13]  Andrew J. Schmitt,et al.  The effects of optical smoothing techniques on filamentation in laser plasmas , 1988 .

[14]  McLean,et al.  Brillouin scattering measurements from plasmas irradiated with spatially and temporally incoherent laser light. , 1987, Physical review letters.

[15]  R. Short,et al.  Filamentation of laser light in flowing plasmas , 1982 .

[16]  Rose,et al.  Laser hot spots and the breakdown of linear instability theory with application to stimulated Brillouin scattering. , 1994, Physical review letters.

[17]  A. C. Gaeris,et al.  The frequency and damping of ion acoustic waves in hydrocarbon (CH) and two‐ion‐species plasmas , 1995 .

[18]  Peter A. Amendt,et al.  Design and modeling of ignition targets for the National Ignition Facility , 1995 .

[19]  McLean,et al.  Laser-target interaction with induced spatial incoherence. , 1986, Physical review letters.

[20]  Heinrich Hora,et al.  Laser Interaction and Related Plasma Phenomena , 2005 .

[21]  J. Moody,et al.  Effects of laser beam smoothing on stimulated Raman scattering in exploding foil plasmas , 1996 .

[22]  Donald W. Phillion,et al.  Laser ionization and heating of gas targets for long‐scale‐length instability experiments , 1994 .

[23]  Daniel N. Baker,et al.  The role of symmetry in indirect‐drive laser fusion , 1995 .

[24]  Burton D. Fried,et al.  The Plasma Dispersion Function , 1961 .

[25]  Williams,et al.  Influence of spatial and temporal laser beam smoothing on stimulated brillouin scattering in filamentary laser light. , 1995, Physical review letters.

[26]  Harvey A. Rose Laser beam deflection by flow and nonlinear self‐focusing , 1996 .

[27]  Andrew J. Schmitt,et al.  Theory of induced spatial incoherence , 1987 .

[28]  J. Goodman Statistical Optics , 1985 .

[29]  M. Rosen,et al.  Exploding pusher performance − A theoretical model , 1979 .

[30]  Williams,et al.  Laser Beam Deflection Induced by Transverse Plasma Flow. , 1996, Physical review letters.

[31]  Samuel A. Letzring,et al.  Improved laser‐beam uniformity using the angular dispersion of frequency‐modulated light , 1989 .

[32]  Epstein,et al.  Electron-temperature measurement in laser-produced plasmas by the ratio of isoelectronic line intensities. , 1992, Physical review. A, Atomic, molecular, and optical physics.

[33]  A. B. Langdon,et al.  Theory and three‐dimensional simulation of light filamentation in laser‐produced plasma , 1993 .