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Featured researches published by S. Le Pape.


Nature | 2014

Fuel gain exceeding unity in an inertially confined fusion implosion

O. A. Hurricane; D. A. Callahan; D. T. Casey; Peter M. Celliers; C. Cerjan; E. L. Dewald; T. R. Dittrich; T. Döppner; D. E. Hinkel; L. Berzak Hopkins; J. L. Kline; S. Le Pape; T. Ma; A. G. MacPhee; J. L. Milovich; A. Pak; H.-S. Park; P. K. Patel; B. A. Remington; J. D. Salmonson; P. T. Springer; R. Tommasini

Ignition is needed to make fusion energy a viable alternative energy source, but has yet to be achieved. A key step on the way to ignition is to have the energy generated through fusion reactions in an inertially confined fusion plasma exceed the amount of energy deposited into the deuterium–tritium fusion fuel and hotspot during the implosion process, resulting in a fuel gain greater than unity. Here we report the achievement of fusion fuel gains exceeding unity on the US National Ignition Facility using a ‘high-foot’ implosion method, which is a manipulation of the laser pulse shape in a way that reduces instability in the implosion. These experiments show an order-of-magnitude improvement in yield performance over past deuterium–tritium implosion experiments. We also see a significant contribution to the yield from α-particle self-heating and evidence for the ‘bootstrapping’ required to accelerate the deuterium–tritium fusion burn to eventually ‘run away’ and ignite.


Nature | 2004

A high-intensity highly coherent soft X-ray femtosecond laser seeded by a high harmonic beam

Philippe Zeitoun; Gabriel Faivre; S. Sebban; Tomas Mocek; A. Hallou; M. Fajardo; D. Aubert; Philippe Balcou; F. Burgy; D. Douillet; S. Kazamias; G. De Lachèze-Murel; T. Lefrou; S. Le Pape; Pascal Mercère; H. Merdji; Anne-Sophie Morlens; Jean-Philippe Rousseau; C. Valentin

Synchrotrons have for decades provided invaluable sources of soft X-rays, the application of which has led to significant progress in many areas of science and technology. But future applications of soft X-rays—in structural biology, for example—anticipate the need for pulses with much shorter duration (femtoseconds) and much higher energy (millijoules) than those delivered by synchrotrons. Soft X-ray free-electron lasers should fulfil these requirements but will be limited in number; the pressure on beamtime is therefore likely to be considerable. Laser-driven soft X-ray sources offer a comparatively inexpensive and widely available alternative, but have encountered practical bottlenecks in the quest for high intensities. Here we establish and characterize a soft X-ray laser chain that shows how these bottlenecks can in principle be overcome. By combining the high optical quality available from high-harmonic laser sources (as a seed beam) with a highly energetic soft X-ray laser plasma amplifier, we produce a tabletop soft X-ray femtosecond laser operating at 10 Hz and exhibiting full saturation, high energy, high coherence and full polarization. This technique should be readily applicable on all existing laser-driven soft X-ray facilities.


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 | 2014

The high-foot implosion campaign on the National Ignition Facilitya)

O. A. Hurricane; D. A. Callahan; D. T. Casey; E. L. Dewald; T. R. Dittrich; T. Döppner; M. A. Barrios Garcia; D. E. Hinkel; L. Berzak Hopkins; P. Kervin; J. L. Kline; S. Le Pape; T. Ma; A. G. MacPhee; J. L. Milovich; J. D. Moody; A. Pak; P. K. Patel; H.-S. Park; B. A. Remington; H. F. Robey; J. D. Salmonson; P. T. Springer; R. Tommasini; L. R. Benedetti; J. A. Caggiano; Peter M. Celliers; C. Cerjan; Rebecca Dylla-Spears; D. H. Edgell

The “High-Foot” platform manipulates the laser pulse-shape coming from the National Ignition Facility laser to create an indirect drive 3-shock implosion that is significantly more robust against instability growth involving the ablator and also modestly reduces implosion convergence ratio. This strategy gives up on theoretical high-gain in an inertial confinement fusion implosion in order to obtain better control of the implosion and bring experimental performance in-line with calculated performance, yet keeps the absolute capsule performance relatively high. In this paper, we will cover the various experimental and theoretical motivations for the high-foot drive as well as cover the experimental results that have come out of the high-foot experimental campaign. At the time of this writing, the high-foot implosion has demonstrated record total deuterium-tritium yields (9.3×1015) with low levels of inferred mix, excellent agreement with implosion simulations, fuel energy gains exceeding unity, and evidenc...


Physics of Plasmas | 2008

High-resolution 17–75keV backlighters for high energy density experiments

H.-S. Park; Brian Maddox; E. Giraldez; S. P. Hatchett; L. T. Hudson; N. Izumi; M.H. Key; S. Le Pape; A. J. Mackinnon; A. G. MacPhee; P. K. Patel; Thomas W. Phillips; B. A. Remington; J. F. Seely; R. Tommasini; R. P. J. Town; J. Workman; E. Brambrink

We have developed 17 keV to 75 keV 1-dimensional and 2-dimensional high-resolution ( 10{sup 17} W/cm{sup 2}. We have achieved high resolution point projection 1-dimensional and 2-dimensional radiography using micro-foil and micro-wire targets attached to low-Z substrate materials. The micro-wire size was 10 {micro}m x 10 {micro}m x 300 {micro}m on a 300 {micro}m x 300 {micro}m x 5 {micro}m CH substrate. The radiography performance was demonstrated using the Titan laser at LLNL. We observed that the resolution is dominated by the micro-wire target size and there is very little degradation from the plasma plume, implying that the high energy x-ray photons are generated mostly within the micro-wire volume. We also observe that there are enough K{alpha} photons created with a 300 J, 1-{omega}, 40 ps pulse laser from these small volume targets, and that the signal-to-noise ratio is sufficiently high, for single shot radiography experiments. This unique technique will be used on future high energy density (HED) experiments at the new Omega-EP, ZR and NIF facilities.


Review of Scientific Instruments | 2012

Neutron spectrometry--an essential tool for diagnosing implosions at the National Ignition Facility (invited).

M. Gatu Johnson; J. A. Frenje; D. T. Casey; C. K. Li; F. H. Séguin; R. D. Petrasso; R. C. Ashabranner; R. Bionta; D. L. Bleuel; E. Bond; J. A. Caggiano; A. Carpenter; C. Cerjan; T. J. Clancy; T. Doeppner; M. J. Eckart; M. J. Edwards; S. Friedrich; S. H. Glenzer; S. W. Haan; Edward P. Hartouni; R. Hatarik; S. P. Hatchett; O. S. Jones; G. A. Kyrala; S. Le Pape; R. A. Lerche; O. L. Landen; T. Ma; A. J. Mackinnon

DT neutron yield (Y(n)), ion temperature (T(i)), and down-scatter ratio (dsr) determined from measured neutron spectra are essential metrics for diagnosing the performance of inertial confinement fusion (ICF) implosions at the National Ignition Facility (NIF). A suite of neutron-time-of-flight (nTOF) spectrometers and a magnetic recoil spectrometer (MRS) have been implemented in different locations around the NIF target chamber, providing good implosion coverage and the complementarity required for reliable measurements of Y(n), T(i), and dsr. From the measured dsr value, an areal density (ρR) is determined through the relationship ρR(tot) (g∕cm(2)) = (20.4 ± 0.6) × dsr(10-12 MeV). The proportionality constant is determined considering implosion geometry, neutron attenuation, and energy range used for the dsr measurement. To ensure high accuracy in the measurements, a series of commissioning experiments using exploding pushers have been used for in situ calibration of the as-built spectrometers, which are now performing to the required accuracy. Recent data obtained with the MRS and nTOFs indicate that the implosion performance of cryogenically layered DT implosions, characterized by the experimental ignition threshold factor (ITFx), which is a function of dsr (or fuel ρR) and Y(n), has improved almost two orders of magnitude since the first shot in September, 2010.


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...


Physics of Plasmas | 2013

Hohlraum energetics scaling to 520 TW on the National Ignition Facility

J. L. Kline; D. A. Callahan; S. H. Glenzer; N. B. Meezan; J. D. Moody; D. E. Hinkel; O. S. Jones; A. J. Mackinnon; R. Bennedetti; R. L. Berger; D. K. Bradley; E. L. Dewald; I. Bass; C. Bennett; M. W. Bowers; G. K. Brunton; J. Bude; S. C. Burkhart; A. Condor; J. M. Di Nicola; P. Di Nicola; S. N. Dixit; T. Doeppner; E. G. Dzenitis; G. V. Erbert; J. Folta; G. P. Grim; S. Glenn; Alex V. Hamza; S. W. Haan

Indirect drive experiments have now been carried out with laser powers and energies up to 520 TW and 1.9 MJ. These experiments show that the energy coupling to the target is nearly constant at 84% ± 3% over a wide range of laser parameters from 350 to 520 TW and 1.2 to 1.9 MJ. Experiments at 520 TW with depleted uranium hohlraums achieve radiation temperatures of ∼330 ± 4 eV, enough to drive capsules 20 μm thicker than the ignition point design to velocities near the ignition goal of 370 km/s. A series of three symcap implosion experiments with nearly identical target, laser, and diagnostics configurations show the symmetry and drive are reproducible at the level of ±8.5% absolute and ±2% relative, respectively.


Nuclear Fusion | 2013

Diagnosing implosion performance at the National Ignition Facility (NIF) by means of neutron spectrometry

J. A. Frenje; R. Bionta; E. Bond; J. A. Caggiano; D. T. Casey; Charles Cerjan; J. Edwards; M. J. Eckart; D. N. Fittinghoff; S. Friedrich; V. Yu. Glebov; S. H. Glenzer; Gary P. Grim; S. W. Haan; R. Hatarik; S. P. Hatchett; M. Gatu Johnson; O. S. Jones; J. D. Kilkenny; J. P. Knauer; O. L. Landen; R. J. Leeper; S. Le Pape; R. A. Lerche; C. K. Li; A. J. Mackinnon; J. M. McNaney; F. E. Merrill; M. J. Moran; David H. Munro

The neutron spectrum from a cryogenically layered deuterium?tritium (dt) implosion at the National Ignition Facility (NIF) provides essential information about the implosion performance. From the measured primary-neutron spectrum (13?15?MeV), yield (Yn) and hot-spot ion temperature (Ti) are determined. From the scattered neutron yield (10?12?MeV) relative to Yn, the down-scatter ratio, and the fuel areal density (?R) are determined. These implosion parameters have been diagnosed to an unprecedented accuracy with a suite of neutron-time-of-flight spectrometers and a magnetic recoil spectrometer implemented in various locations around the NIF target chamber. This provides good implosion coverage and excellent measurement complementarity required for reliable measurements of Yn, Ti and ?R, in addition to ?R asymmetries. The data indicate that the implosion performance, characterized by the experimental ignition threshold factor, has improved almost two orders of magnitude since the first shot taken in September 2010. ?R values greater than 1?g?cm?2 are readily achieved. Three-dimensional semi-analytical modelling and numerical simulations of the neutron-spectrometry data, as well as other data for the hot spot and main fuel, indicate that a maximum hot-spot pressure of ?150?Gbar has been obtained, which is almost a factor of two from the conditions required for ignition according to simulations. Observed Yn are also 3?10 times lower than predicted. The conjecture is that the observed pressure and Yn deficits are partly explained by substantial low-mode ?R asymmetries, which may cause inefficient conversion of shell kinetic energy to hot-spot thermal energy at stagnation.


Review of Scientific Instruments | 2012

Using high-intensity laser-generated energetic protons to radiograph directly driven implosions

A. B. Zylstra; C. K. Li; H. G. Rinderknecht; F. H. Séguin; R. D. Petrasso; C. Stoeckl; D. D. Meyerhofer; P.M. Nilson; T. C. Sangster; S. Le Pape; A. J. Mackinnon; P. K. Patel

The recent development of petawatt-class lasers with kilojoule-picosecond pulses, such as OMEGA EP [L. Waxer et al., Opt. Photonics News 16, 30 (2005)], provides a new diagnostic capability to study inertial-confinement-fusion (ICF) and high-energy-density (HED) plasmas. Specifically, petawatt OMEGA EP pulses have been used to backlight OMEGA implosions with energetic proton beams generated through the target normal sheath acceleration (TNSA) mechanism. This allows time-resolved studies of the mass distribution and electromagnetic field structures in ICF and HED plasmas. This principle has been previously demonstrated using Vulcan to backlight six-beam implosions [A. J. Mackinnon et al., Phys. Rev. Lett. 97, 045001 (2006)]. The TNSA proton backlighter offers better spatial and temporal resolution but poorer spatial uniformity and energy resolution than previous D(3)He fusion-based techniques [C. Li et al., Rev. Sci. Instrum. 77, 10E725 (2006)]. A target and the experimental design technique to mitigate potential problems in using TNSA backlighting to study full-energy implosions is discussed. The first proton radiographs of 60-beam spherical OMEGA implosions using the techniques discussed in this paper are presented. Sample radiographs and suggestions for troubleshooting failed radiography shots using TNSA backlighting are given, and future applications of this technique at OMEGA and the NIF are discussed.

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A. J. Mackinnon

Lawrence Livermore National Laboratory

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T. Ma

University of California

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P. K. Patel

Lawrence Livermore National Laboratory

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A. G. MacPhee

Lawrence Livermore National Laboratory

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L. Berzak Hopkins

Lawrence Livermore National Laboratory

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L. Divol

Lawrence Livermore National Laboratory

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D. A. Callahan

Lawrence Livermore National Laboratory

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N. B. Meezan

Lawrence Livermore National Laboratory

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D. T. Casey

Lawrence Livermore National Laboratory

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E. L. Dewald

Lawrence Livermore National Laboratory

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