A. Ben-Ismail
École Polytechnique
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Featured researches published by A. Ben-Ismail.
Physics of Plasmas | 2009
Victor Malka; Jérôme Faure; Clément Rechatin; A. Ben-Ismail; J. Lim; Xavier Davoine; E. Lefebvre
A review of recent simulation and experimental studies of the colliding pulse injection scheme is presented. One dimensional particle in cell simulations show that when the colliding pulses have parallel polarizations, the dominant effects that have to be considered for modeling electron injection in plasma waves are (i) stochastic heating and (ii) wakefield inhibition at the collision. With cross polarized pulses, injection of an electron beam is still possible because stochastic heating still occurs. However, it is found numerically that the injection threshold is higher in this case. The simulations also underline the possibility of tuning the electron beam parameters by modifying the injection laser pulse. Experiments (i) validate these scenarios and show that stable and high quality electron beams are produced when two counterpropagating laser pulses collide in an underdense plasma and (ii) confirm very clearly the existence of a threshold for injection, which is higher with cross polarized pulses than with parallel polarized pulses.
Applied Physics Letters | 2011
A. Ben-Ismail; O. Lundh; Clément Rechatin; J. Lim; Jérôme Faure; S. Corde; Victor Malka
Gamma-ray beams with optimal and tuneable size, temperature, and dose are of great interest for a large variety of applications. These photons can be produced by the conversion of energetic electrons through the bremsstrahlung process in a dense material. This work presents the experimental demonstration of 30 μm resolution radiography of dense objects using an optimized gamma-ray source, produced with a high-quality electron beam delivered by a compact laser-plasma accelerator.
Physical Review Letters | 2011
S. Corde; C. Thaury; Kim Ta Phuoc; Agustin Lifschitz; G. Lambert; Jérôme Faure; O. Lundh; E. Benveniste; A. Ben-Ismail; L. Arantchuk; A. Marciniak; A. Stordeur; P. Brijesh; Antoine Rousse; A. Specka; Victor Malka
The x-ray emission in laser-plasma accelerators can be a powerful tool to understand the physics of relativistic laser-plasma interaction. It is shown here that the mapping of betatron x-ray radiation can be obtained from the x-ray beam profile when an aperture mask is positioned just beyond the end of the emission region. The influence of the plasma density on the position and the longitudinal profile of the x-ray emission is investigated and compared to particle-in-cell simulations. The measurement of the x-ray emission position and length provides insight on the dynamics of the interaction, including the electron self-injection region, possible multiple injection, and the role of the electron beam driven wakefield.
New Journal of Physics | 2010
Clément Rechatin; Jérôme Faure; Xavier Davoine; O. Lundh; J. Lim; A. Ben-Ismail; F. Burgy; Amar Tafzi; A. Lifschitz; Eric Lefebvre; Victor Malka
In this study, electrons were injected into a laser plasma accelerator using colliding laser pulses. By varying the parameters of the injection laser pulse, the amount of charge accelerated in the plasma wave could be controlled. This external control of the injected load was used to investigate beam loading of the accelerating structure and especially its influence on the electron beam energy and energy spread. Information on the accelerating structure and bunch duration was then derived from these experimental observations.
Medical Physics | 2012
O. Lundh; Clément Rechatin; Jérôme Faure; A. Ben-Ismail; J. Lim; C. De Wagter; W. De Neve; Victor Malka
PURPOSE To evaluate the dose distribution of a 120-MeV laser-plasma accelerated electron beam which may be of potential interest for high-energy electron radiation therapy. METHODS In the interaction between an intense laser pulse and a helium gas jet, a well collimated electron beam with very high energy is produced. A secondary laser beam is used to optically control and to tune the electron beam energy and charge. The potential use of this beam for radiation treatment is evaluated experimentally by measurements of dose deposition in a polystyrene phantom. The results are compared to Monte Carlo simulations using the geant4 code. RESULTS It has been shown that the laser-plasma accelerated electron beam can deliver a peak dose of more than 1 Gy at the entrance of the phantom in a single laser shot by direct irradiation, without the use of intermediate magnetic transport or focusing. The dose distribution is peaked on axis, with narrow lateral penumbra. Monte Carlo simulations of electron beam propagation and dose deposition indicate that the propagation of the intense electron beam (with large self-fields) can be described by standard models that exclude collective effects in the response of the material. CONCLUSIONS The measurements show that the high-energy electron beams produced by an optically injected laser-plasma accelerator can deliver high enough dose at penetration depths of interest for electron beam radiotherapy of deep-seated tumors. Many engineering issues must be resolved before laser-accelerated electrons can be used for cancer therapy, but they also represent exciting challenges for future research.
conference on lasers and electro optics | 2012
C. Thaury; S. Corde; K. Ta Phuoc; A. Lifschitz; R. Fitour; Jérôme Faure; G. Lambert; O. Lundh; E. Benveniste; A. Ben-Ismail; Leonid Arantchouk; A. Marciniak; A. Stordeur; P. Brijesh; A. Specka; Victor Malka; Antoine Rousse
We show that the control and the mapping of the x-ray emission reveals unique features of the laser-plasma accelerator physics, including strong correlations between electron and x-ray beams, and density-dependence of electron injection position.
Nature Physics | 2011
O. Lundh; J. Lim; Clément Rechatin; L. Ammoura; A. Ben-Ismail; X. Davoine; Guilhem Gallot; Jean-Philippe Goddet; E. Lefebvre; Victor Malka; Jérôme Faure
Physical Review Letters | 2009
Clément Rechatin; Jérôme Faure; A. Ben-Ismail; J. Lim; R. Fitour; A. Specka; H. Videau; Amar Tafzi; F. Burgy; Victor Malka
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2011
A. Ben-Ismail; Jérôme Faure; Victor Malka
Archive | 2009
Victor Malka; Jérôme Faure; A. Ben-Ismail; E. Lefebvre