F. Sylla
École Polytechnique
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by F. Sylla.
Review of Scientific Instruments | 2012
F. Sylla; M. Veltcheva; S. Kahaly; Alessandro Flacco; Victor Malka
We report on the characterization of recently developed submillimetric He gas jets with peak density higher than 10(21) atoms/cm(3) from cylindrical and slightly conical nozzles of throat diameter of less than 400 μm. Helium gas at pressure 300-400 bar has been developed for this purpose to compensate the nozzle throat diameter reduction that affects the output mass flow rate. The fast-switching electro-valve enables to operate the jet safely for multi-stage vacuum pump assembly. Such gaseous thin targets are particularly suitable for laser-plasma interaction studies in the unexplored near-critical regime.
Physical Review Letters | 2013
F. Sylla; Alessandro Flacco; S. Kahaly; M. Veltcheva; Agustin Lifschitz; Victor Malka; Emmanuel d’Humières; I. Andriyash; V. T. Tikhonchuk
It is observed that the interaction of an intense ultrashort laser pulse with a near-critical gas jet results in the pulse collapse and the deposition of a significant fraction of the energy. This deposition happens in a small and well-localized volume in the rising part of the gas jet, where the electrons are efficiently accelerated and heated. A collisionless plasma expansion over ~ 150 μm at a subrelativistic velocity (~ c/3) has been optically monitored in time and space, and attributed to the quasistatic field ionization of the gas associated with the hot electron current. Numerical simulations in good agreement with the observations suggest the acceleration in the collapse region of relativistic electrons, along with the excitation of a sizable magnetic dipole that sustains the electron current over several picoseconds.
Nature Physics | 2015
Alessandro Flacco; Jorge Vieira; Agustin Lifschitz; F. Sylla; S. Kahaly; M. Veltcheva; L. O. Silva; Victor Malka
In laboratory experiments, strong magnetic fields at the boundary of a plasma can be generated by means of laser-wakefield acceleration, enabling the study of magnetization processes in scaled versions of astrophysical plasmas.
Physical Review Letters | 2012
F. Sylla; Alessandro Flacco; S. Kahaly; M. Veltcheva; Agustin Lifschitz; G. Sanchez-Arriaga; E. Lefebvre; Victor Malka
In laser-plasma experiments, we observed that ion acceleration from the Coulomb explosion of the plasma channel bored by the laser is prevented when multiple plasma instabilities, such as filamentation and hosing, and nonlinear coherent structures (vortices or postsolitons) appear in the wake of an ultrashort laser pulse. The tailoring of the longitudinal plasma density ramp allows us to control the onset of these instabilities. We deduced that the laser pulse is depleted into these structures in our conditions, when a plasma at about 10% of the critical density exhibits a gradient on the order of 250 μm (Gaussian fit), thus hindering the acceleration. A promising experimental setup with a long pulse is demonstrated enabling the excitation of an isolated coherent structure for polarimetric measurements and, in further perspectives, parametric studies of ion plasma acceleration efficiency.
New Journal of Physics | 2014
Agustin Lifschitz; F. Sylla; S Kahaly; Alessandro Flacco; M. Veltcheva; G. Sanchez-Arriaga; E. Lefebvre; Victor Malka
We report on the ion acceleration mechanisms that occur during the interaction of an intense and ultrashort laser pulse ( λμ > − I 10 W cm m 21 8 2 2 ) with an underdense helium plasma produced from an ionized gas jet target. In this unexplored regime, where the laser pulse duration is comparable to the inverse of the electron plasma frequency ω pe , reproducible non-thermal ion bunches have been measured in the radial direction. The two He ion charge states present energy distributions with cutoff energies between 150 and 200 keV, and a striking energy gap around 50 keV appearing consistently for all the shots in a given density range. Fully electromagnetic particle-in-cell simulations explain the experimental behaviors. The acceleration results from a combination of target normal sheath acceleration and Coulomb explosion of a filament formed around the laser pulse propagation axis.
Scientific Reports | 2017
Hyung Taek Kim; Vishwa Bandhu Pathak; Ki Hong Pae; Agustin Lifschitz; F. Sylla; Jung Hun Shin; Calin Hojbota; Seong Ku Lee; Jae Hee Sung; Hwang Woon Lee; E. Guillaume; C. Thaury; Kazuhisa Nakajima; Jorge Vieira; L. O. Silva; Victor Malka; Chang Hee Nam
The achievable energy and the stability of accelerated electron beams have been the most critical issues in laser wakefield acceleration. As laser propagation, plasma wave formation and electron acceleration are highly nonlinear processes, the laser wakefield acceleration (LWFA) is extremely sensitive to initial experimental conditions. We propose a simple and elegant waveform control method for the LWFA process to enhance the performance of a laser electron accelerator by applying a fully optical and programmable technique to control the chirp of PW laser pulses. We found sensitive dependence of energy and stability of electron beams on the spectral phase of laser pulses and obtained stable 2-GeV electron beams from a 1-cm gas cell of helium. The waveform control technique for LWFA would prompt practical applications of centimeter-scale GeV-electron accelerators to a compact radiation sources in the x-ray and γ-ray regions.
Scientific Reports | 2016
S. Kahaly; F. Sylla; Agustin Lifschitz; Alessandro Flacco; M. Veltcheva; Victor Malka
Ion acceleration from intense (Iλ2 > 1018 Wcm−2 μm2) laser-plasma interaction is experimentally studied within a wide range of He gas densities. Focusing an ultrashort pulse (duration ion plasma period) on a newly designed submillimetric gas jet system, enabled us to inhibit total evacuation of electrons from the central propagation channel reducing the radial ion acceleration associated with ponderomotive Coulomb explosion, a mechanism predominant in the long pulse scenario. New ion acceleration mechanism have been unveiled in this regime leading to non-Maxwellian quasi monoenergetic features in the ion energy spectra. The emitted nonthermal ion bunches show a new scaling of the ion peak energy with plasma density. The scaling identified in this new regime differs from previously reported studies.
Physical Review E | 2010
Alessandro Flacco; F. Sylla; M. Veltcheva; Michaël Carrié; R. Nuter; E. Lefebvre; D. Batani; Victor Malka
Physical Review Special Topics-accelerators and Beams | 2015
E. Guillaume; A. Döpp; C. Thaury; Agustin Lifschitz; J. P. Goddet; Amar Tafzi; F. Sylla; G. Iaquanello; T. Lefrou; P. Rousseau; K. Ta Phuoc; Victor Malka
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2010
Alessandro Flacco; T. Ceccotti; H. George; P. Monot; Philippe Martin; F. Réau; O. Tcherbakoff; P. D'Oliveira; F. Sylla; M. Veltcheva; F. Burgy; Amar Tafzi; Victor Malka; D. Batani