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Dive into the research topics where L. Romagnani is active.

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Featured researches published by L. Romagnani.


Science | 2006

Ultrafast laser-driven microlens to focus and energy-select mega-electron volt protons

T. Toncian; M. Borghesi; J. Fuchs; Emmanuel d'Humieres; P. Antici; Patrick Audebert; E. Brambrink; C. A. Cecchetti; A. Pipahl; L. Romagnani; O. Willi

We present a technique for simultaneous focusing and energy selection of high-current, mega–electron volt proton beams with the use of radial, transient electric fields (107 to 1010 volts per meter) triggered on the inner walls of a hollow microcylinder by an intense subpicosecond laser pulse. Because of the transient nature of the focusing fields, the proposed method allows selection of a desired range out of the spectrum of the polyenergetic proton beam. This technique addresses current drawbacks of laser-accelerated proton beams, such as their broad spectrum and divergence at the source.


Review of Scientific Instruments | 2004

Proton radiography as an electromagnetic field and density perturbation diagnostic (invited)

A. J. Mackinnon; P. K. Patel; R. P. J. Town; M. J. Edwards; T. G. Phillips; S. C. Lerner; D. G. Hicks; M.H. Key; S. P. Hatchett; S. C. Wilks; M. Borghesi; L. Romagnani; S. Kar; T. Toncian; Georg Pretzler; O. Willi; M. Koenig; E. Martinolli; S. Lepape; A. Benuzzi-Mounaix; P. Audebert; J. C. Gauthier; J.A. King; R. Snavely; R. R. Freeman; T. Boehlly

Laser driven proton beams have been used to diagnose transient fields and density perturbations in laser produced plasmas. Grid deflectometry techniques have been applied to proton radiography to obtain precise measurements of proton beam angles caused by electromagnetic fields in laser produced plasmas. Application of proton radiography to laser driven implosions has demonstrated that density conditions in compressed media can be diagnosed with million electron volt protons. This data has shown that proton radiography can provide unique insight into transient electromagnetic fields in super critical density plasmas and provide a density perturbation diagnostics in compressed matter.


Physics of Plasmas | 2007

Energetic protons generated by ultrahigh contrast laser pulses interacting with ultrathin targets

P. Antici; J. Fuchs; E. d’Humières; E. Lefebvre; M. Borghesi; E. Brambrink; C. A. Cecchetti; Sandrine A. Gaillard; L. Romagnani; Y. Sentoku; T. Toncian; O. Willi; P. Audebert; H. Pépin

A regime of laser acceleration of protons, which relies on the interaction of ultrahigh contrast laser pulses with ultrathin targets, has been validated using experiments and simulations. Proton beams were accelerated to a maximum energy of ∼7.3MeV from targets as thin as 30nm irradiated at 1018Wcm−2μm2 (1J, 320fs) with an estimated peak laser pulse to pedestal intensity contrast ratio of 1011. This represents nearly a tenfold increase in proton energy compared to the highest energies obtainable using non contrast enhanced pulses and thicker targets (>5μm) at the same intensity. To obtain similar proton energy with thicker targets and the same laser pulse duration, a much higher laser intensity (i.e., above 1019Wcm−2μm2) is required. The simulations are in close agreement with the experimental results, showing efficient electron heating compared to the case of thicker targets. Rapid target expansion, allowing laser absorption in density gradients, is key to enhanced electron heating and ion acceleration i...


Plasma Physics and Controlled Fusion | 2005

Progress in the study of Warm Dense Matter

M. Koenig; A. Benuzzi-Mounaix; A. Ravasio; T. Vinci; Norimasa Ozaki; S. Lepape; D. Batani; Gael Huser; T. Hall; D. G. Hicks; A. J. Mackinnon; P. K. Patel; H.-S. Park; T. R. Boehly; M. Borghesi; S. Kar; L. Romagnani

In the last few years, high power lasers have demonstrated the possibility to explore a new state of matter, the so-called warm dense matter. Among the possible techniques utilized to generate this state, we present the dynamic compression technique using high power lasers. Applications to planetary cores material (iron) will be discussed. Finally new diagnostics such as proton and hard-x-ray radiography of a shock propagating in a solid target will be presented.


Applied Physics Letters | 2003

Measurement of highly transient electrical charging following high-intensity laser–solid interaction

M. Borghesi; L. Romagnani; A. Schiavi; D.H. Campbell; M. G. Haines; O. Willi; A. J. Mackinnon; M. Galimberti; L. A. Gizzi; R. J. Clarke; S. Hawkes

The multi-million-electron-volt proton beams accelerated during high-intensity laser–solid interactions have been used as a particle probe to investigate the electric charging of microscopic targets laser-irradiated at intensity ∼1019 W cm2. The charge-up, detected via the proton deflection with high temporal and spatial resolution, is due to the escape of energetic electrons generated during the interaction. The analysis of the data is supported by three-dimensional tracing of the proton trajectories.


Laser and Particle Beams | 2007

Impulsive electric fields driven by high-intensity laser matter interactions

M. Borghesi; S. Kar; L. Romagnani; T. Toncian; P. Antici; P. Audebert; E. Brambrink; F. Ceccherini; C. A. Cecchetti; J. Fuchs; M. Galimberti; L. A. Gizzi; T. Grismayer; T. Lyseikina; R. Jung; Andrea Macchi; P. Mora; J. Osterholtz; A. Schiavi; O. Willi

Theinteractionofhigh-intensitylaserpulseswithmatterreleasesinstantaneouslyultra-largecurrentsofhighlyenergetic electrons, leading to the generation of highly-transient, large-amplitude electric and magnetic fields. We report results of recent experiments in which such charge dynamics have been studied by using proton probing techniques able to provide maps of the electrostatic fields with high spatial and temporal resolution. The dynamics of ponderomotive channeling in underdense plasmas have been studied in this way, as also the processes of Debye sheath formation andMeVionfrontexpansionattherearoflaser-irradiatedthinmetallicfoils.Laser-drivenimpulsivefieldsatthesurface of solid targets can be applied for energy-selective ion beam focusing.


Physical Review Letters | 2012

Dynamics of Self-Generated, Large Amplitude Magnetic Fields Following High-Intensity Laser Matter Interaction

Gianluca Sarri; Andrea Macchi; C. A. Cecchetti; S. Kar; T. V. Liseykina; X. H. Yang; Mark E Dieckmann; J. Fuchs; M. Galimberti; L. A. Gizzi; R. Jung; Ioannis Kourakis; J. Osterholz; Francesco Pegoraro; A. P. L. Robinson; L. Romagnani; O. Willi; M. Borghesi

The dynamics of magnetic fields with an amplitude of several tens of megagauss, generated at both sides of a solid target irradiated with a high-intensity (~10(19) W/cm(2)) picosecond laser pulse, has been spatially and temporally resolved using a proton imaging technique. The amplitude of the magnetic fields is sufficiently large to have a constraining effect on the radial expansion of the plasma sheath at the target surfaces. These results, supported by numerical simulations and simple analytical modeling, may have implications for ion acceleration driven by the plasma sheath at the rear side of the target as well as for the laboratory study of self-collimated high-energy plasma jets.


Physics of Plasmas | 2004

Integrated implosion/heating studies for advanced fast ignition

P.A. Norreys; K. L. Lancaster; C. D. Murphy; H. Habara; Stefan Karsch; R. J. Clarke; John Collier; R. Heathcote; C. Hemandez-Gomez; S. Hawkes; D. Neely; M. H. R. Hutchinson; R. G. Evans; M. Borghesi; L. Romagnani; Matthew Zepf; K. Akli; J.A. King; B. Zhang; R. R. Freeman; A. J. Mackinnon; S. P. Hatchett; P. K. Patel; Richard Adolph Snavely; M.H. Key; A. Nikroo; R. Stephens; C. Stoeckl; K. A. Tanaka; Takayoshi Norimatsu

Integrated experiments to investigate the ultrafast heating of implosions using cone/shell geometries have been performed at the Rutherford Appleton Laboratory. The experiments used the 1054 nm, nanosecond, 0.9 kJ output of the VULCAN Nd:glass laser to drive 486 μm diameter, 6 μm wall thickness Cu-doped deuterated plastic (CD) shells in 6-beam cubic symmetry. Measurements of the opacity of the compressed plasma using two-dimensional spatially resolved Ti-Kα x-ray radiography suggest that densities of 4 g cm−3 and areal densities of 40 mg cm−2 were achieved at stagnation. Upper limits on the heating with both 1 ps and 10 ps pulses were deduced from the fluorescent yield from the Cu dopant. The data suggest that control of the preformed plasma scale-length inside the cone is necessary for efficient coupling to the compressed plasma.


Physical Review Letters | 2013

Time-Resolved Characterization of the Formation of a Collisionless Shock

H. Ahmed; Mark E Dieckmann; L. Romagnani; D. Doria; Gianluca Sarri; M. Cerchez; E. Ianni; Ioannis Kourakis; A.L. Giesecke; M. Notley; R. Prasad; K. Quinn; O. Willi; M. Borghesi

We report on the temporally and spatially resolved detection of the precursory stages that lead to the formation of an unmagnetized, supercritical collisionless shock in a laser-driven laboratory experiment. The measured evolution of the electrostatic potential associated with the shock unveils the transition from a current free double layer into a symmetric shock structure, stabilized by ion reflection at the shock front. Supported by a matching particle-in-cell simulation and theoretical considerations, we suggest that this process is analogous to ion reflection at supercritical collisionless shocks in supernova remnants.


Laser and Particle Beams | 2008

Proton probing measurement of electric and magnetic fields generated by ns and ps laser-matter interactions

L. Romagnani; M. Borghesi; C. A. Cecchetti; S. Kar; P. Antici; P. Audebert; S. Bandhoupadjay; F. Ceccherini; T. E. Cowan; J. Fuchs; M. Galimberti; L. A. Gizzi; T. Grismayer; R. Heathcote; R. Jung; T. V. Liseykina; Andrea Macchi; P. Mora; D. Neely; M. Notley; J. Osterholtz; C.A. Pipahl; G. Pretzler; A. Schiavi; G. Schurtz; T. Toncian; P.A. Wilson; O. Willi

The use of laser-accelerated protons as a particle probe for the detection of electric fields in plasmas has led in recent years to a wealth of novel information regarding the ultrafast plasma dynamics following high intensity laser-matter interactions. The high spatial quality and short duration of these beams have been essential to this purpose. We will discuss some of the most recent results obtained with this diagnostic at the Rutherford Appleton Laboratory (UK) and at LULI - Ecole Polytechnique (France), also applied to conditions of interest to conventional Inertial Confinement Fusion. In particular, the technique has been used to measure electric fields responsible for proton acceleration from solid targets irradiated with ps pulses, magnetic fields formed by ns pulse irradiation of solid targets, and electric fields associated with the ponderomotive channelling of ps laser pulses in under-dense plasmas.

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M. Borghesi

Queen's University Belfast

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O. Willi

Centre national de la recherche scientifique

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J. Fuchs

École Polytechnique

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P. Antici

Institut national de la recherche scientifique

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T. Toncian

University of Düsseldorf

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C. A. Cecchetti

Queen's University Belfast

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Gianluca Sarri

Queen's University Belfast

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S. Kar

Queen's University Belfast

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D. Doria

Queen's University Belfast

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K. Quinn

Queen's University Belfast

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