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Featured researches published by L. Divol.


Science | 2010

Symmetric Inertial Confinement Fusion Implosions at Ultra-High Laser Energies

S. H. Glenzer; B. J. MacGowan; P. Michel; N. B. Meezan; L. J. Suter; S. Dixit; J. L. Kline; G. A. Kyrala; D. K. Bradley; D. A. Callahan; E. L. Dewald; L. Divol; E. G. Dzenitis; M. J. Edwards; Alex V. Hamza; C. A. Haynam; D. E. Hinkel; D. H. Kalantar; J. D. Kilkenny; O. L. Landen; J. D. Lindl; S. LePape; J. D. Moody; A. Nikroo; T. Parham; M. B. Schneider; R. P. J. Town; Paul J. Wegner; K. Widmann; Pamela K. Whitman

Ignition Set to Go One aim of the National Ignition Facility is to implode a capsule containing a deuterium-tritium fuel mix and initiate a fusion reaction. With 192 intense laser beams focused into a centimeter-scale cavity, a major challenge has been to create a symmetric implosion and the necessary temperatures within the cavity for ignition to be realized (see the Perspective by Norreys). Glenzer et al. (p. 1228, published online 28 January) now show that these conditions can be met, paving the way for the next step of igniting a fuel-filled capsule. Furthermore, Li et al. (p. 1231, published online 28 January) show how charged particles can be used to characterize and measure the conditions within the imploding capsule. The high energies and temperature realized can also be used to model astrophysical and other extreme energy processes in a laboratory settings. Laser-driven temperatures and implosion symmetry are close to the requirements for inertial-fusion ignition. Indirect-drive hohlraum experiments at the National Ignition Facility have demonstrated symmetric capsule implosions at unprecedented laser drive energies of 0.7 megajoule. One hundred and ninety-two simultaneously fired laser beams heat ignition-emulate hohlraums to radiation temperatures of 3.3 million kelvin, compressing 1.8-millimeter-diameter capsules by the soft x-rays produced by the hohlraum. Self-generated plasma optics gratings on either end of the hohlraum tune the laser power distribution in the hohlraum, which produces a symmetric x-ray drive as inferred from the shape of the capsule self-emission. These experiments indicate that the conditions are suitable for compressing deuterium-tritium–filled capsules, with the goal of achieving burning fusion plasmas and energy gain in the laboratory.


Physics of Plasmas | 2010

Symmetry tuning via controlled crossed-beam energy transfer on the National Ignition Facilitya)

P. Michel; S. H. Glenzer; L. Divol; David K. Bradley; D. A. Callahan; S. Dixit; S. Glenn; D. E. Hinkel; R. K. Kirkwood; J. L. Kline; W. L. Kruer; G. A. Kyrala; S. Le Pape; N. B. Meezan; R. P. J. Town; K. Widmann; E. A. Williams; B. J. MacGowan; J. D. Lindl; L. Suter

The Hohlraum energetics experimental campaign started in the summer of 2009 on the National Ignition Facility (NIF) [E. I. Moses et al., Phys. Plasmas 16, 041006 (2009)]. These experiments showed good coupling of the laser energy into the targets [N. Meezan et al., Phys. Plasmas 17, 056304 (2010)]. They have also demonstrated controlled crossed-beam energy transfer between laser beams as an efficient and robust tool to tune the implosion symmetry of ignition capsules, as predicted by earlier calculations [P. Michel et al., Phys. Rev. Lett. 102, 025004 (2009)]. A new linear model calculating crossed-beam energy transfer between cones of beams on the NIF has been developed. The model has been applied to the subscale Hohlraum targets shot during the National Ignition Campaign in 2009. A good agreement can be found between the calculations and the experiments when the impaired propagation of the laser beams due to backscatter is accounted for.


Physics of Plasmas | 2011

Capsule implosion optimization during the indirect-drive National Ignition Campaign

O. L. Landen; John Edwards; S. W. Haan; H. F. Robey; J. L. Milovich; B. K. Spears; S. V. Weber; D. S. Clark; J. D. Lindl; B. J. MacGowan; E. I. Moses; J. Atherton; Peter A. Amendt; T. R. Boehly; David K. Bradley; David G. Braun; D. A. Callahan; Peter M. Celliers; G. W. Collins; E. L. Dewald; L. Divol; J. A. Frenje; S. H. Glenzer; Alex V. Hamza; B. A. Hammel; D. G. Hicks; Nelson M. Hoffman; N. Izumi; O. S. Jones; J. D. Kilkenny

Capsule performance optimization campaigns will be conducted at the National Ignition Facility [G. H. Miller, E. I. Moses, and C. R. Wuest, Nucl. Fusion 44, 228 (2004)] to substantially increase the probability of ignition. The campaigns will experimentally correct for residual uncertainties in the implosion and hohlraum physics used in our radiation-hydrodynamic computational models using a variety of ignition capsule surrogates before proceeding to cryogenic-layered implosions and ignition experiments. The quantitative goals and technique options and down selections for the tuning campaigns are first explained. The computationally derived sensitivities to key laser and target parameters are compared to simple analytic models to gain further insight into the physics of the tuning techniques. The results of the validation of the tuning techniques at the OMEGA facility [J. M. Soures et al., Phys. Plasmas 3, 2108 (1996)] under scaled hohlraum and capsule conditions relevant to the ignition design are shown ...


Physics of Plasmas | 2011

Analysis of the National Ignition Facility Ignition Hohlraum Energetics Experiments

R. P. J. Town; M. D. Rosen; P. Michel; L. Divol; J. D. Moody; G. A. Kyrala; M. B. Schneider; J. L. Kline; C. A. Thomas; J. L. Milovich; D. A. Callahan; N. B. Meezan; D. E. Hinkel; E. A. Williams; R. L. Berger; M. J. Edwards; L. J. Suter; S. W. Haan; J. D. Lindl; E. L. Dewald; S. Dixit; S. H. Glenzer; O. L. Landen; E. I. Moses; Howard A. Scott; J. A. Harte; George B. Zimmerman

A series of 40 experiments on the National Ignition Facility (NIF) [E. I. Moses et al., Phys. Plasmas 16, 041006 (2009)] to study energy balance and implosion symmetry in reduced- and full-scale ignition hohlraums was shot at energies up to 1.3 MJ. This paper reports the findings of the analysis of the ensemble of experimental data obtained that has produced an improved model for simulating ignition hohlraums. Last year the first observation in a NIF hohlraum of energy transfer between cones of beams as a function of wavelength shift between those cones was reported [P. Michel et al., Phys. Plasmas 17, 056305 (2010)]. Detailed analysis of hohlraum wall emission as measured through the laser entrance hole (LEH) has allowed the amount of energy transferred versus wavelength shift to be quantified. The change in outer beam brightness is found to be quantitatively consistent with LASNEX [G. B. Zimmerman and W. L. Kruer, Comments Plasma Phys. Controlled Fusion 2, 51 (1975)] simulations using the predicted ener...


Physics of Plasmas | 2012

Fast-ignition transport studies: Realistic electron source, integrated particle-in-cell and hydrodynamic modeling, imposed magnetic fields

D. J. Strozzi; Max Tabak; David J. Larson; L. Divol; Andreas Kemp; C. Bellei; M. M. Marinak; M.H. Key

Transport modeling of idealized, cone-guided fast ignition targets indicates the severe challenge posed by fast-electron source divergence. The hybrid particle-in-cell (PIC) code Zuma is run in tandem with the radiation-hydrodynamics code Hydra to model fast-electron propagation, fuel heating, and thermonuclear burn. The fast electron source is based on a 3D explicit-PIC laser-plasma simulation with the PSC code. This shows a quasi two-temperature energy spectrum and a divergent angle spectrum (average velocity-space polar angle of 52°). Transport simulations with the PIC-based divergence do not ignite for >1 MJ of fast-electron energy, for a modest (70 μm) standoff distance from fast-electron injection to the dense fuel. However, artificially collimating the source gives an ignition energy of 132 kJ. To mitigate the divergence, we consider imposed axial magnetic fields. Uniform fields ∼50 MG are sufficient to recover the artificially collimated ignition energy. Experiments at the Omega laser facility hav...


Physics of Plasmas | 2012

Characterizing counter-streaming interpenetrating plasmas relevant to astrophysical collisionless shocks

J. S. Ross; S. H. Glenzer; Peter A. Amendt; R. L. Berger; L. Divol; N. L. Kugland; O. L. Landen; C. Plechaty; B. A. Remington; D. D. Ryutov; W. Rozmus; D. H. Froula; G. Fiksel; C. Sorce; Y. Kuramitsu; T. Morita; Y. Sakawa; H. Takabe; R. P. Drake; M.J. Grosskopf; C. C. Kuranz; G. Gregori; J. Meinecke; C. D. Murphy; M. Koenig; A. Pelka; A. Ravasio; T. Vinci; Edison P. Liang; R. Presura

A series of Omega experiments have produced and characterized high velocity counter-streaming plasma flows relevant for the creation of collisionless shocks. Single and double CH2 foils have been irradiated with a laser intensity of ∼ 1016 W/cm2. The laser ablated plasma was characterized 4 mm from the foil surface using Thomson scattering. A peak plasma flow velocity of 2000 km/s, an electron temperature of ∼ 110 eV, an ion temperature of ∼ 30 eV, and a density of ∼ 1018 cm−3 were measured in the single foil configuration. Significant increases in electron and ion temperatures were seen in the double foil geometry. The measured single foil plasma conditions were used to calculate the ion skin depth, c/ωpi∼0.16 mm, the interaction length, lint, of ∼ 8 mm, and the Coulomb mean free path, λmfp∼27mm. With c/ωpi≪lint≪λmfp, we are in a regime where collisionless shock formation is possible.


Physics of Plasmas | 2004

Effects of ion trapping on crossed-laser-beam stimulated Brillouin scattering

E. A. Williams; Bruce I. Cohen; L. Divol; M. Dorr; J. Hittinger; D. E. Hinkel; A. B. Langdon; R. K. Kirkwood; D. H. Froula; S. H. Glenzer

An analysis of the effects of ion trapping on ion acoustic waves excited by the stimulated Brillouin scattering of crossing intense laser beams is presented. Ion trapping alters the dispersion of ion acoustic waves by nonlinearly shifting the normal mode frequency and by reducing the ion Landau damping. This in turn can influence the energy transfer between two crossing laser beams in the presence of plasma flows such that stimulated Brillouin scattering (SBS) occurs. The same ion trapping physics can influence the saturation of SBS in other circumstances. A one-dimensional analytical model is presented along with reasonably successful comparisons of the theory to results from particle simulations and laboratory experiments. An analysis of the vulnerability of the National Ignition Facility Inertial Confinement Fusion point design [S. W. Haan et al., Fusion Sci. Technol. 41, 164 (2002)] is also presented.


Review of Scientific Instruments | 2010

Backscatter measurements for NIF ignition targets (invited)

J. D. Moody; P. S. Datte; K. Krauter; E. Bond; P. Michel; S. H. Glenzer; L. Divol; C. Niemann; L. J. Suter; N. B. Meezan; B. J. MacGowan; R. L. Hibbard; Richard A. London; J. D. Kilkenny; R. J. Wallace; J. L. Kline; K. M. Knittel; G. Frieders; B. P. Golick; G. Ross; K. Widmann; Jessie Jackson; Stephen P. Vernon; T. J. Clancy

Backscattered light via laser-plasma instabilities has been measured in early NIF hohlraum experiments on two beam quads using a suite of detectors. A full aperture backscatter system and near backscatter imager (NBI) instrument separately measure the stimulated Brillouin and stimulated Raman scattered light. Both instruments work in conjunction to determine the total backscattered power to an accuracy of ∼15%. In order to achieve the power accuracy we have added time-resolution to the NBI for the first time. This capability provides a temporally resolved spatial image of the backscatter which can be viewed as a movie.


Physics of Plasmas | 2009

Energy transfer between laser beams crossing in ignition hohlraums

P. Michel; L. Divol; E. A. Williams; C. A. Thomas; D. A. Callahan; S. V. Weber; S. W. Haan; J. D. Salmonson; N. B. Meezan; O. L. Landen; S. Dixit; D. E. Hinkel; M. J. Edwards; B. J. MacGowan; J. D. Lindl; S. H. Glenzer; L. J. Suter

The full scale modeling of power transfer between laser beams crossing in plasmas is presented. A new model was developed, allowing calculations of the propagation and coupling of pairs of laser beams with their associated plasma wave in three dimensions. The complete set of laser beam smoothing techniques used in ignition experiments is modeled and their effects on crossed-beam energy transfer are investigated. A shift in wavelength between the beams can move the instability in or out of resonance and hence allows tuning of the energy transfer. The effects of energy transfer on the effective beam pointing and on symmetry have been investigated. Several ignition designs have been analyzed and compared, indicating that a wavelength shift of up to 2 A between cones of beams should be sufficient to control energy transfer in ignition experiments.


Physics of Plasmas | 2015

Near-vacuum hohlraums for driving fusion implosions with high density carbon ablatorsa)

L. Berzak Hopkins; S. Le Pape; L. Divol; N. B. Meezan; A. J. Mackinnon; D. Ho; O. S. Jones; S. F. Khan; J. L. Milovich; J. S. Ross; Peter A. Amendt; D. T. Casey; Peter M. Celliers; A. Pak; J. L. Peterson; J. E. Ralph; J. R. Rygg

Recent experiments at the National Ignition Facility [M. J. Edwards et al., Phys. Plasmas 20, 070501 (2013)] have explored driving high-density carbon ablators with near-vacuum hohlraums, which use a minimal amount of helium gas fill. These hohlraums show improved efficiency relative to conventional gas-filled hohlraums in terms of minimal backscatter, minimal generation of suprathermal electrons, and increased hohlraum-capsule coupling. Given these advantages, near-vacuum hohlraums are a promising choice for pursuing high neutron yield implosions. Long pulse symmetry control, though, remains a challenge, as the hohlraum volume fills with material. Two mitigation methodologies have been explored, dynamic beam phasing and increased case-to-capsule ratio (larger hohlraum size relative to capsule). Unexpectedly, experiments have demonstrated that the inner laser beam propagation is better than predicted by nominal simulations, and an enhanced beam propagation model is required to match measured hot spot symm...

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N. B. Meezan

Lawrence Livermore National Laboratory

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S. H. Glenzer

SLAC National Accelerator Laboratory

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P. Michel

Lawrence Livermore National Laboratory

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D. H. Froula

Lawrence Livermore National Laboratory

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J. D. Moody

Lawrence Livermore National Laboratory

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R. L. Berger

Lawrence Livermore National Laboratory

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O. L. Landen

Lawrence Livermore National Laboratory

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J. S. Ross

Lawrence Livermore National Laboratory

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L. J. Suter

Lawrence Livermore National Laboratory

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D. A. Callahan

Lawrence Livermore National Laboratory

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