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Dive into the research topics where F. Polack is active.

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Featured researches published by F. Polack.


Plasma Physics and Controlled Fusion | 2016

An application of laser–plasma acceleration: towards a free-electron laser amplification

Marie-Emmanuelle Couprie; C. Evain; F. Marteau; F. Briquez; M. Khojoyan; C. Benabderrahmane; Lilian Chapuis; Nicolas Hubert; Charles Bourassin-Bouchet; M. El Ajjouri; F. Bouvet; Yannick Dietrich; Mathieu Valléau; G.Sharma; W.Yang; Olivier Marcouillé; J.Vétéran; P.Berteaud; T.K.El Ajjouri; L. Cassinari; C. Thaury; G. Lambert; I Andriyash; Victor Malka; Xavier Davoine; Marie-Agnès Tordeux; C. Miron; Daniel Zerbib; Keihan Tavakoli; Jean-Louis Marlats

The laser–plasma accelerator (LPA) presently provides electron beams with a typical current of a few kA, a bunch length of a few fs, energy in the few hundred MeV to several GeV range, a divergence of typically 1 mrad, an energy spread of the order of 1%, and a normalized emittance of the order of π.mm.mrad. One of the first applications could be to use these beams for the production of radiation: undulator emission has been observed but the rather large energy spread (1%) and divergence (1 mrad) prevent straightforward free-electron laser (FEL) amplification. An adequate beam manipulation through the transport to the undulator is then required. The key concept proposed here relies on an innovative electron beam longitudinal and transverse manipulation in the transport towards an undulator: a demixing chicane sorts the electrons according to their energy and reduces the spread from 1% to one slice of a few ‰ and the effective transverse size is maintained constant along the undulator (supermatching) by a proper synchronization of the electron beam focusing with the progress of the optical wave. A test experiment for the demonstration of FEL amplification with an LPA is under preparation. Electron beam transport follows different steps with strong focusing with permanent magnet quadrupoles of variable strength, a demixing chicane with conventional dipoles, and a second set of quadrupoles for further focusing in the undulator. The FEL simulations and the progress of the preparation of the experiment are presented.


11th International Conference on Synchrotron Radiation Instrumentation (SRI) | 2013

The LUNEX5 Project in France

Marie-Emmanuelle Couprie; C. Benabderrahmane; P. Betinelli; F. Bouvet; A. Buteau; L. Cassinari; J. Daillant; J.C. Denard; P. Eymard; B. Gagey; C. Herbeaux; B. Lagarde; A. Lestrade; A. Loulergue; P. Marchand; Jean-Louis Marlats; C. Miron; P.Morin; A. Nadji; F. Polack; J. B. Pruvost; F. Ribeiro; J.P. Ricaud; P. Roy; T. Tanikawa; R. Roux; S. Bielawski; C. Evain; Christophe Szwaj; G. Lambert

The LUNEX5 (free electron Laser Using a New accelerator for the Exploitation of X-ray radiation of 5th generation) in France aims at investigating the generation of short, intense, and coherent pulses in the soft x-ray region (with two particular targeted wavelengths of 20 and 13 nm). It consists in a single Free Electron Laser (FEL) line with cryo-ready invacuum undulators using a Conventional Linear Accelerator (CLA) using the superconducting technology of 400 MeV or a Laser Wake Field Accelerator (LWFA) ranging from 0.4 to 1 GeV with multi-TW or PW lasers. The FEL line can be operated in the seeded (High order Harmonic in Gas seeding) and Echo Enable Harmonic Generation configurations, which performances will be compared. Two pilot user experiments for time-resolved studies of isolated species and magnetization dynamics will take benefit of LUNEX5 FEL radiation


Nature Communications | 2018

Control of laser plasma accelerated electrons for light sources

Thomas André; I. Andriyash; A. Loulergue; Eléonore Roussel; Amin Ghaith; M. Khojoyan; C. Thaury; Mathieu Valléau; F. Briquez; F. Marteau; Keihan Tavakoli; P. N’Gotta; Yannick Dietrich; G. Lambert; Victor Malka; C. Benabderrahmane; J.Vétéran; Lilian Chapuis; T.K.El Ajjouri; M. Sebdaoui; Nicolas Hubert; Olivier Marcouillé; P.Berteaud; Nicolas Leclercq; M. El Ajjouri; P. Rommeluère; F. Bouvet; Jean-Pierre Duval; C. Kitegi; Frederic Blache

With gigaelectron-volts per centimetre energy gains and femtosecond electron beams, laser wakefield acceleration (LWFA) is a promising candidate for applications, such as ultrafast electron diffraction, multistaged colliders and radiation sources (betatron, compton, undulator, free electron laser). However, for some of these applications, the beam performance, for example, energy spread, divergence and shot-to-shot fluctuations, need a drastic improvement. Here, we show that, using a dedicated transport line, we can mitigate these initial weaknesses. We demonstrate that we can manipulate the beam longitudinal and transverse phase-space of the presently available LWFA beams. Indeed, we separately correct orbit mis-steerings and minimise dispersion thanks to specially designed variable strength quadrupoles, and select the useful energy range passing through a slit in a magnetic chicane. Therefore, this matched electron beam leads to the successful observation of undulator synchrotron radiation after an 8u2009m transport path. These results pave the way to applications demanding in terms of beam quality.Electron beam quality in accelerators is crucial for light source application. Here the authors demonstrate beam conditioning of laser plasma electrons thanks to a specific transport line enabling the control of divergence, energy, steering and dispersion and the application to observe undulator radiation.


Nature Communications | 2018

Publisher Correction: Control of laser plasma accelerated electrons for light sources

Thomas André; I. Andriyash; A. Loulergue; Eléonore Roussel; Amin Ghaith; M. Khojoyan; C. Thaury; Mathieu Valléau; F. Briquez; F. Marteau; Keihan Tavakoli; P. N’Gotta; Yannick Dietrich; G. Lambert; Victor Malka; C. Benabderrahmane; J.Vétéran; Lilian Chapuis; T.K.El Ajjouri; M. Sebdaoui; Nicolas Hubert; Olivier Marcouillé; P.Berteaud; Nicolas Leclercq; M. El Ajjouri; P. Rommeluère; F. Bouvet; Jean-Pierre Duval; C. Kitegi; Frederic Blache

The original version of this Article contained an error in the last sentence of the first paragraph of the Introduction and incorrectly read ‘A proper electron beam control is one of the main challenges towards the Graal of developing a compact alternative of X-ray free-electron lasers by coupling LWFA gigaelectron-volts per centimetre acceleration gradient with undulators in the amplification regime in equation 11, nx(n-β) x β: n the two times and beta the two times should be bold since they are vectorsin Eq. 12, β should be bold as well.’xa0The correct version is ‘A proper electron beam control is one of the main challenges towards the Graal of developing a compact alternative of X-ray free-electron lasers by coupling LWFA gigaelectron-volts per centimetre acceleration gradient with undulators in the amplification regime.’This has been corrected in both the PDF and HTML versions of the Article.


Proceedings of SPIE | 2015

Experiment preparation towards a demonstration of laser plasma based free electron laser amplification

A. Loulergue; C. Evain; Nicolas Hubert; F. Briquez; F. Marteau; C. Benabderrahmane; P.Berteaud; C.Bourassin-Bouchet; F. Bouvet; L. Cassinari; Lilian Chapuis; M. El Ajjouri; C. Herbeaux; M. Khojoyan; D. Dennetière; Nicolas Leclercq; Jp. Duval; A. Lestrade; Olivier Marcouillé; P. Rommeluère; J.-L. Marlats; P.Morin; F. Polack; Keihan Tavakoli; Mathieu Valléau; Daniel Zerbib; W.Yang; Xavier Davoine; I. Andriyash; G. Lambert

One direction towards compact Free Electron Laser is to replace the conventional linac by a laser plasma driven beam, provided proper electron beam manipulation to handle the large values of the energy spread and of the divergence. Applying seeding techniques enable also to reduce the required undulator length. The rapidly developing LWFA are already able to generate synchrotron radiation. With an electron divergence of typically 1 mrad and an energy spread of the order of 1 % (or few), an adequate beam manipulation through the transport to the undulator is needed for FEL amplification. Electron beam transfer follows different steps with strong focusing variable strength permanent magnet quadrupoles, an energy demixing chicane with conventional dipoles, a second set of quadrupoles for further dedicated focusing in the undulator. A test experiment for the demonstration of FEL amplification with a LWFA is under preparation and progress on the equipment preparation and expected performance are described.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2008

Time-dependent FEL wavefront propagation calculations: Fourier optics approach

Oleg Chubar; Marie-Emmanuelle Couprie; Guillaume Lambert; F. Polack; Olivier Tcherbakoff


international free electron laser conference | 2012

The LUNEX5 project

Marie-Emmanuelle Couprie; C. Benabderrahmane; P. Betinelli; F. Bouvet; A. Buteau; L. Cassinari; J. Daillant; J.C. Denard; P. Eymard; B. Gagey; C. Herbeaux; M. Labat; A. Lestrade; A. Loulergue; P. Marchand; Olivier Marcouillé; J.-L. Marlats; C. Miron; P.Morin; A. Nadji; F. Polack; J. B. Pruvost; F. Ribeiro; J.P. Ricaud; P. Roy; T. Tanikawa; R. Roux; S. Bielawski; C. Evain; Christophe Szwaj


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2013

A new phase-shift microscope designed for high accuracy stitching interferometry

Muriel Thomasset; Mourad Idir; F. Polack; Michael Bray; Jean-Jacques Servant


Archive | 2015

Advances on the LUNEX5 and COXINEL Projects

C. Benabderrahmane; P.Berteaud; C.Bourassin-Bouchet; F. Bouvet; J.D.Bozek; F. Briquez; L. Cassinari; Lilian Chapuis; J.Da Silva; J.Daillant; D. Dennetière; Yannick Dietrich; M.Diop; Jean-Pierre Duval; M. El Ajjouri; T.K.El Ajjouri; C. Herbeaux; Nicolas Hubert; M. Khojoyan; Nicolas Leclercq; A. Lestrade; A. Loulergue; J.Lüning; P.Marchand; Olivier Marcouillé; Jean-Louis Marlats; F. Marteau; C. Miron; P.Morin; Amor Nadji


Archive | 2014

PROGRESS OF THE LUNEX5 DEMONSTRATOR PROJECT

C. Benabderrahmane; P.Berteaud; C.Bourassin-Bouchet; F. Bouvet; L. Cassinari; Lilian Chapuis; J.Daillant; M.Diop; M.E.El Ajjouri; C. Evain; C. Herbeaux; Nicolas Hubert; P.Lebasque; P.Marchand; Olivier Marcouillé; Jean-Louis Marlats; C. Miron; P.Morin; Amor Nadji; F. Polack; F.Ribeiro; J.P.Ricaud; Priyadarsi D. Roy; Keihan Tavakoli; Mathieu Valléau; Daniel Zerbib

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C. Thaury

Université Paris-Saclay

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