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Dive into the research topics where D. Hey is active.

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Featured researches published by D. Hey.


Physics of Plasmas | 2007

Laser generated proton beam focusing and high temperature isochoric heating of solid matter

Richard Adolph Snavely; B. Zhang; K. Akli; Z. L. Chen; R. R. Freeman; P. Gu; S. P. Hatchett; D. Hey; Jeremy Hill; M.H. Key; Y. Izawa; J.A. King; Y. Kitagawa; R. Kodama; A. B. Langdon; Barbara F. Lasinski; Anle Lei; A. J. Mackinnon; P. K. Patel; R. Stephens; M. Tampo; K. A. Tanaka; R. P. J. Town; Y. Toyama; T. Tsutsumi; S. C. Wilks; T. Yabuuchi; Jian Zheng

The results of laser-driven proton beam focusing and heating with a high energy (170J) short pulse are reported. Thin hemispherical aluminum shells are illuminated with the Gekko petawatt laser using 1μm light at intensities of ∼3×1018W∕cm2 and measured heating of thin Al slabs. The heating pattern is inferred by imaging visible and extreme-ultraviolet light Planckian emission from the rear surface. When Al slabs 100μm thick were placed at distances spanning the proton focus beam waist, the highest temperatures were produced at 0.94× the hemisphere radius beyond the equatorial plane. Isochoric heating temperatures reached 81eV in 15μm thick foils. The heating with a three-dimensional Monte Carlo model of proton transport with self-consistent heating and proton stopping in hot plasma was modeled.


Physics of Plasmas | 2008

Fast electron generation in cones with ultraintense laser pulses

L. Van Woerkom; K. U. Akli; T. Bartal; F. N. Beg; S. Chawla; C. D. Chen; Enam Chowdhury; R. R. Freeman; D. Hey; M.H. Key; J. King; Anthony Link; T. Ma; Andrew J. Mackinnon; A. G. MacPhee; Dustin Offermann; V. Ovchinnikov; P. K. Patel; Douglass Schumacher; R. Stephens; Y.Y. Tsui

Experimental results from copper cones irradiated with ultra-intense laser light are presented. Spatial images and total yields of Cu K{sub {alpha}} fluorescence were measured as a function of the laser focusing properties. The fluorescence emission extends into the cone approximately 300 {micro}m from the cone tip and cannot be explained by ray tracing including cone wall absorption. In addition the total fluorescence yield from cones is an order of magnitude higher than for equivalent mass foil targets. Indications are that the physics of the laser cone interaction is dominated by preplasma created from the long duration, low energy pre-pulse from the laser.


New Journal of Physics | 2008

Space and time resolved measurements of the heating of solids to ten million kelvin by a petawatt laser

M. Nakatsutsumi; J. R. Davies; R. Kodama; J.S. Green; K. L. Lancaster; K. U. Akli; F. N. Beg; Sophia Chen; D. Clark; R. R. Freeman; C. D. Gregory; H. Habara; R. Heathcote; D. Hey; K. Highbarger; P. A. Jaanimagi; M.H. Key; K. Krushelnick; T. Ma; A. G. MacPhee; A. J. Mackinnon; H. Nakamura; R. Stephens; M. Storm; M. Tampo; W. Theobald; L. Van Woerkom; R. L. Weber; Mingsheng Wei; N. Woolsey

The heating of plane solid targets by the Vulcan petawatt laser at powers of 0.32–0.73 PW and intensities of up to 4×1020 W cm−2 has been diagnosed with a temporal resolution of 17 ps and a spatial resolution of 30 μm, by measuring optical emission from the opposite side of the target to the laser with a streak camera. Second harmonic emission was filtered out and the target viewed at an angle to eliminate optical transition radiation. Spatial resolution was obtained by imaging the emission onto a bundle of fibre optics, arranged into a one-dimensional array at the camera entrance. The results show that a region 160 μm in diameter can be heated to a temperature of ~107 K (kT/e~ keV) in solid targets from 10 to 20 μm thick and that this temperature is maintained for at least 20 ps, confirming the utility of PW lasers in the study of high energy density physics. Hybrid code modelling shows that magnetic field generation prevents increased target heating by electron refluxing above a certain target thickness and that the absorption of laser energy into electrons entering the solid target was between 15–30%, and tends to increase with laser energy.


Review of Scientific Instruments | 2006

Measurements of electron and proton heating temperatures from extreme-ultraviolet light images at 68eV in petawatt laser experiments

Peimin Gu; B. Zhang; M.H. Key; S. P. Hatchett; Troy W. Barbee; R. R. Freeman; K. Akli; D. Hey; J. King; A. J. Mackinnon; Richard Adolph Snavely; R.B. Stephens

A 68 eV extreme-ultraviolet light imaging diagnostic measures short pulse isochoric heating by electrons and protons in petawatt laser experiments. Temperatures are deduced from the absolute intensities and comparison with modeling using a radiation hydrodynamics code.


Review of Scientific Instruments | 2006

Development of Time Resolved X-ray Spectroscopy in High Intensity Laser-Plasma Interactions

M. M. Notley; R. L. Weber; B. Fell; J. Jeffries; R. R. Freeman; Andrew J. Mackinnon; R. Dickson; D. Hey; F. Y. Khattak; E. Garcia Saiz; G. Gregori

This article discusses the design of a novel time resolved von Hamos Bragg spectrometer to provide spectra in the region around the titanium K-α and He-α lines. The instrument consists of a highly oriented pyrolitic graphite mosaic crystal coupled to a picosecond x-ray streak camera. Measurements of the time dependent behavior from Ti foils illuminated with intense laser pulses can be used to improve the understanding of recombination dynamics, electron transport, and phase transitions in strongly coupled dense plasma. This is important for the modeling of the compression phase in inertial confinement fusion research and the study of astrophysical environments.


Journal of Physics: Conference Series | 2008

On point designs for high gain fast ignition

M.H. Key; K. Akli; F. N. Beg; R. Betti; Daniel Clark; Sophia Chen; R. R. Freeman; Stephanie B. Hansen; S. P. Hatchett; D. Hey; J.A. King; Andreas Kemp; Barbara F. Lasinski; B. Langdon; T. Ma; A. J. Mackinnon; D. D. Meyerhofer; P. K. Patel; J. Pasley; T. G. Phillips; R. Stephens; C. Stoeckl; M. E. Foord; Max Tabak; W. Theobald; M. Storm; R. P. J. Town; S. C. Wilks; L VanWoerkom; Mingsheng Wei

Fast ignition research has reached the stage where point designs are becoming crucial to the identification of key issues and the development of projects to demonstrate high gain fast ignition. The status of point designs for cone coupled electron fast ignition and some of the issues they highlight are discussed.


international conference on plasma science | 2007

Electron Temperature Measurements in Petawatt Laser Experiments Based on 68 EV and 256 EV XUV Imaging

T.Y. Ma; J. Pasley; M. Wei; F.N. Beg; K. U. Akli; Dustin Offerman; L. Van Woerkom; R. R. Freeman; A.G. MaePhee; A.T. Mackinnon; M.H. Key; D. Hey; B. Zhang; R.B. Stephens

Summary form only given. The electron temperatures of various layered, cone-wire, and nail targets irradiated with the Vulcan petawatt laser (2 times1020 W cm-2) at the Rutherford Appleton Laboratory are determined through the analysis of extreme-ultraviolet XUV images. Two channels in the XUV system allow for time integrated, spectrally resolved images of XUV emission at photon energies of 68 eV and 256 eV. A comparison of the absolute intensities of these images with the radiation hydrodynamics code LASNEX facilitates a temperature map of the target.


Nature Physics | 2007

Surface heating of wire plasmas using laser-irradiated cone geometries

J.S. Green; K. L. Lancaster; K. Akli; C. D. Gregory; F. N. Beg; Sophia Chen; D. Clark; R. R. Freeman; S. Hawkes; C. Hernandez-Gomez; H. Habara; R. Heathcote; D. Hey; K. Highbarger; M.H. Key; R. Kodama; K. Krushelnick; I. O. Musgrave; H. Nakamura; M. Nakatsutsumi; N. Patel; R. Stephens; M. Storm; M. Tampo; W. Theobald; L. Van Woerkom; R. L. Weber; Mingsheng Wei; N. Woolsey; P. A. Norreys


Journal De Physique Iv | 2006

Study of electron and proton isochoric heating for fast ignition

M.H. Key; K. Akli; F. N. Beg; M. H. Chen; H.-K. Chung; R. R. Freeman; M. E. Foord; J.S. Green; P. Gu; G. Gregori; H. Habara; S. P. Hatchett; D. Hey; J.M. Hill; J.A. King; R. Kodama; J. A. Koch; K. L. Lancaster; Barbara F. Lasinski; B. Langdon; Andrew J. Mackinnon; C. D. Murphy; P.A. Norreys; N. Patel; P. K. Patel; J. Pasley; Richard Adolph Snavely; R. Stephens; C. Stoeckl; Max Tabak


Journal De Physique Iv | 2006

Overview of recent progress in US fast ignition research

R. R. Freeman; K. Akli; F. N. Beg; R. Betti; Sophia Chen; D. Clark; P. Gu; G. Gregori; S. P. Hatchett; D. Hey; K. Highbarger; J.M. Hill; N. Izumi; M.H. Key; J.A. King; J. A. Koch; B. Lasinki; B. Langdon; Andrew J. Mackinnon; D. D. Meyerhofer; N. Patel; P. K. Patel; J. Pasley; Hae-Sim Park; C. Ren; Richard Adolph Snavely; R. Stephens; C. Stoeckl; Max Tabak; R. P. J. Town

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M.H. Key

Lawrence Livermore National Laboratory

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Andrew J. Mackinnon

Lawrence Livermore National Laboratory

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F. N. Beg

University of California

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P. K. Patel

Lawrence Livermore National Laboratory

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K. Akli

University of California

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S. P. Hatchett

Lawrence Livermore National Laboratory

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T. Ma

University of California

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