M. Couprie and J. Filhol, X radiation sources based on accelerators, Comptes Rendus Physique, vol.9, issue.5, pp.487-506, 2008.

J. Chen, The uses of synchrotron radiation sources for elemental and chemical microanalysis, Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, vol.49, pp.533-543, 1990.

J. Helliwell, Protein crystallography with synchrotron radiation, Journal of Molecular Structure, vol.130, issue.5, pp.63-91, 1985.

P. Suortti and W. Thomlinson, Medical applications of synchrotron radiation, Physics in Medicine & Biology, vol.48, issue.5, p.1, 2003.

D. Rugg, Synchrotron use for materials science and engineering-the next decade. Philo-3910 sophical, Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, vol.373, issue.5, p.20130160, 2015.

J. M. Madey, Stimulated emission of bremsstrahlung in a periodic magnetic field, Journal of Applied Physics, vol.42, issue.5, pp.1906-1913, 1971.

P. Emma, First lasing and operation of an ångstrom-wavelength free-electron laser. 3915 nature photonics, vol.4, p.641, 2010.

C. Bostedt, Linac coherent light source: The first five years, Reviews of Modern Physics, vol.88, issue.5, p.15007, 2016.

R. J. Van-de-graaff, K. Compton, and L. Van-atta, The electrostatic production of high voltage for nuclear investigations, Physical Review, vol.43, issue.5, p.149, 1933.

G. Ising, Arkiv för matematik, Astronomi och Fysik, vol.18, issue.5, 1924.

J. Paszkiewicz, P. Burrows, and W. Wuensch, Spatially resolved dark current in high gradient traveling wave structures, 10th Int. Partile Accelerator Conf.(IPAC'19), pp.2956-2959, 2019.

S. Döbert, Gradient limitations for high-frequency accelerators, p.3925

A. Lab, , 2018.

E. O. Lawrence and M. S. Livingston, The production of high speed light ions without the use of high voltages, Physical Review, vol.40, issue.5, p.19, 1932.

T. Tajima and J. M. Dawson, Laser electron accelerator, Physical Review Letters, vol.43, p.267, 1979.

V. Malka, Electron acceleration by a wake field forced by an intense ultrashort laser pulse, Science, vol.298, pp.1596-1600, 2002.
URL : https://hal.archives-ouvertes.fr/hal-00519003

E. Esarey, C. B. Schroeder, and W. P. Leemans, Physics of laser-driven plasma-based electron 3935 accelerators, Rev. Mod. Phys, vol.81, pp.1229-1285, 2009.

V. Malka, Laser plasma accelerators, Physics of Plasmas, vol.19, p.55501, 2012.
URL : https://hal.archives-ouvertes.fr/hal-00498498

S. Mangles, Monoenergetic beams of relativistic electrons from intense laser-plasma 3940 interactions, Nature, vol.431, issue.8, pp.535-538, 2004.

C. Geddes, High-quality electron beams from a laser wakefield accelerator using plasma-channel guiding, Nature, vol.431, issue.8, pp.538-541, 2004.

J. Faure, A laser-plasma accelerator producing monoenergetic electron beams, Nature, vol.431, issue.8, pp.541-544, 2004.
URL : https://hal.archives-ouvertes.fr/hal-00508775

A. Pukhov and J. Meyer-ter-vehn, Laser wake field acceleration: the highly non-linear brokenwave regime, Appl. Phys. B, vol.74, p.355, 2002.

J. Faure, A laser-plasma accelerator producing monoenergetic electron beams, Nature, vol.431, pp.541-544, 2004.
URL : https://hal.archives-ouvertes.fr/hal-00508775

W. Lu, C. Huang, M. Zhou, W. B. Mori, and T. Katsouleas, Nonlinear theory for relativistic plasma wakefields in the blowout regime, Phys. Rev. Lett, vol.96, p.165002, 2006.

P. Sprangle, C. Tang, and E. Esarey, Relativistic self-focusing of short-pulse radiation beams in plasmas, IEEE Trans. Plasma Sci, vol.15, p.145, 1987.

G. Sun, E. Ott, Y. C. Lee, and P. Guzdar, Self-focusing of short intense pulses in plasmas. The Physics of Fluids, vol.30, pp.526-532, 1987.

S. Kalmykov, S. A. Yi, V. Khudik, and G. Shvets, Electron self-injection and trapping into an 3960 evolving plasma bubble, Phys. Rev. Lett, vol.103, p.135004, 2009.

S. Y. Kalmykov, Electron self-injection into an evolving plasma bubble: Quasimonoenergetic laser-plasma acceleration in the blowout regime, Physics of Plasmas, vol.18, p.56704, 2011.

E. Esarey, R. F. Hubbard, W. P. Leemans, A. Ting, and P. Sprangle, Electron injection into plasma wakefields by colliding laser pulses, Phys. Rev. Lett, vol.79, pp.2682-2685, 1997.

J. Faure, Controlled injection and acceleration of electrons in plasma wakefields by 3970 colliding laser pulses, Nature, vol.444, issue.8, pp.737-739, 2006.

C. Rechatin, Observation of beam loading in a laser-plasma accelerator, Phys. Rev. Lett, vol.103, issue.8, p.194804, 2009.
URL : https://hal.archives-ouvertes.fr/hal-00498458

C. Mcguffey, Ionization induced trapping in a laser wakefield accelerator, Phys. Rev

. Lett, , vol.104, p.25004, 2010.

A. Pak, Injection and trapping of tunnel-ionized electrons into laser-produced wakes, Phys. Rev. Lett, vol.104, p.25003, 2010.

B. B. Pollock, Demonstration of a narrow energy spread, ? 0.5 GeV electron beam from a two-stage laser wakefield accelerator, Phys. Rev. Lett, vol.107, p.45001, 2011.

G. Golovin, Tunable monoenergetic electron beams from independently controllable laser-wakefield acceleration and injection, Phys. Rev. ST Accel. Beams, vol.18, p.11301, 2015.

,

J. Couperus, Demonstration of a beam loaded nanocoulomb-class laser wakefield accelerator, Nature communications, vol.8, issue.7, p.487, 2017.

S. Bulanov, N. Naumova, F. Pegoraro, and J. Sakai, Particle injection into the wave acceleration phase due to nonlinear wake wave breaking, Phys. Rev. E, vol.58, pp.5257-5260, 1998.

J. Faure, C. Rechatin, O. Lundh, L. Ammoura, and V. Malka, Injection and acceleration of quasimonoenergetic relativistic electron beams using density gradients at the edges of a plasma channel, Physics of Plasmas, vol.17, p.83107, 2010.
URL : https://hal.archives-ouvertes.fr/hal-01405588

C. G. Geddes, Plasma-density-gradient injection of low absolute-momentum-spread electron bunches, Phys. Rev. Lett, vol.100, p.215004, 2008.

A. J. Gonsalves, Tunable laser plasma accelerator based on longitudinal density tailoring, Nat Phys, vol.7, pp.862-866, 2011.

S. A. Samant, A. K. Upadhyay, and S. Krishnagopal, High brightness electron beams from density transition laser wakefield acceleration for short-wavelength free-electron lasers, Plasma Physics and Controlled Fusion, vol.56, p.95003, 2014.

K. Schmid, Density-transition based electron injector for laser driven wakefield accel-4005 erators, Phys. Rev. ST Accel. Beams, vol.13, issue.8, p.91301, 2010.

A. Buck, Shock-front injector for high-quality laser-plasma acceleration, Phys. Rev. Lett, vol.110, p.185006, 2013.

C. Thaury, Shock assisted ionization injection in laser-plasma accelerators, Scientific Reports, vol.5, p.168, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01234027

F. Massimo, A. F. Lifschitz, C. Thaury, and V. Malka, Numerical studies of density transition injection in laser wakefield acceleration, Plasma Physics and Controlled Fusion, vol.59, p.85004, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01563728

W. P. Leemans, Multi-gev electron beams from capillary-discharge-guided subpetawatt laser pulses in the self-trapping regime, Phys. Rev. Lett, vol.113, issue.8, p.245002, 2014.

A. Gonsalves, Petawatt laser guiding and electron beam acceleration to 8 GeV in a laser-heated capillary discharge waveguide, Phys. Rev. Lett, vol.122, issue.7, p.84801, 2019.

H. T. Kim, Enhancement of electron energy to the multi-gev regime by a dual-stage laser-wakefield accelerator pumped by petawatt laser pulses, Phys. Rev. Lett, vol.111, p.165002, 2013.

S. Steinke, Multistage coupling of independent laser-plasma accelerators, Nature, vol.530, pp.190-193, 2016.

J. Faure, A laser-plasma accelerator producing monoenergetic electron beams, Nature, vol.431, issue.8, p.541, 2004.
URL : https://hal.archives-ouvertes.fr/hal-00508775

W. P. Leemans, GeV electron beams from a cm-scale accelerator, Nature Phys, vol.2, pp.696-699, 2006.

S. Kneip, Near-gev acceleration of electrons by a nonlinear plasma wave driven by a 4030 self-guided laser pulse, Phys. Rev. Lett, vol.103, p.35002, 2009.

X. Wang, Quasi-monoenergetic laser-plasma acceleration of electrons to 2 gev, Nature communications, vol.4, 1988.

E. Guillaume, Electron rephasing in a laser-wakefield accelerator, Phys. Rev. Lett, vol.115, p.155002, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01220095

M. Hansson, B. Aurand, H. Ekerfelt, A. Persson, and O. Lundh, Injection of electrons by colliding laser pulses in a laser wakefield accelerator, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.4040, pp.99-103, 2016.

M. Burza, Laser wakefield acceleration using wire produced double density ramps, Phys. Rev. ST Accel. Beams, vol.16, p.11301, 2013.

. Physrevstab,

M. Hansson, Down-ramp injection and independently controlled acceleration of electrons in a tailored laser wakefield accelerator, Phys. Rev. ST Accel. Beams, vol.18, p.71303, 2015.

,

C. Thaury, Demonstration of relativistic electron beam focusing by a laser-plasma lens, Nature communications, vol.4050, p.60, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01164362

M. E. Couprie, Undulator design for laser plasma based free electron laser

F. Elder, A. Gurewitsch, R. Langmuir, and H. Pollock, Radiation from electrons in a synchrotron, Physical Review, vol.71, p.9, 1947.

H. Onuki, P. Elleaume, and . Undulators, wigglers and their applications, vol.9, p.36, 2003.

A. Einstein, Zur quantentheorie der strahlung, Phys. Z, vol.18, issue.10, pp.121-128, 1917.

J. P. Gordon, H. J. Zeiger, and C. H. Townes, The maser-new type of microwave amplifier, frequency standard, and spectrometer, Physical Review, vol.99, p.10, 1955.

C. Townes and A. Schawlow, Infrared and optical masers, Phys. Rev, vol.112, p.10, 1958.

T. H. Maiman, Stimulated optical radiation in Ruby, 1960.

P. Jaegle, X-ray laser experiment with a long recombining-plasma column, Europhysics Letters), vol.7, p.10, 1988.

P. B. Corkum, Plasma perspective on strong field multiphoton ionization. Physical review 4065 letters, vol.71, p.10, 1993.

A. L'huillier and P. Balcou, High-order harmonic generation in rare gases with a 1-ps 1053-nm laser, Physical Review Letters, vol.70, p.10, 1993.

J. M. Madey, Stimulated emission of bremsstrahlung in a periodic magnetic field, Journal of Applied Physics, vol.42, p.48, 1971.

W. Colson, Theory of a free electron laser, Physics Letters A, vol.59, p.10, 1976.

R. B. Palmer, Interaction of relativistic particles and free electromagnetic waves in the presence of a static helical magnet, Journal of Applied Physics, vol.43, p.10, 1972.

E. Courant, C. Pellegrini, and W. Zakowicz, High-energy inverse free-electron laser accelerator, AIP Conference Proceedings, vol.127, p.10, 1985.

M. Trovo, Operation of the european storage ring fel at elettra down to 190 nm, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.483, p.11, 2002.

L. R. Elias, W. M. Fairbank, J. M. Madey, H. A. Schwettman, and T. I. Smith, Observation of stimulated emission of radiation by relativistic electrons in a spatially periodic transverse 4080 magnetic field, Physical Review Letters, vol.36, p.12, 1976.

D. A. Deacon, First operation of a free-electron laser, Physical Review Letters, vol.38, p.12, 1977.

M. Billardon, First operation of a storage-ring free-electron laser, Physical review letters, vol.51, p.11, 1983.

B. E. Newnam, R. W. Warren, R. L. Sheffield, J. C. Goldstein, and C. A. Brau, The los alamos free electron laser oscillator: Optical performance, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.237, p.11, 1985.

M. Couprie, D. Garzella, and M. Billardon, Operation of the Super-ACO free-electron laser in 4090 the UV range at 800 MeV, Europhysics Letters), vol.21, p.11, 1993.

R. Prazeres, F. Glotin, and J. Ortega, Optical mode analysis on the CLIO infrared FEL, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.341, p.11, 1994.

D. Oepts, A. Van-der-meer, and P. Van-amersfoort, The free-electron-laser user facility FELIX. 4095 Infrared physics & technology, vol.36, p.11, 1995.

V. N. Litvinenko, S. H. Park, I. V. Pinayev, and Y. Wu, Operation of the OK-4/Duke storage ring FEL below 200 nm, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.475, p.11, 2001.

M. Marsi, Operation and performance of a free electron laser oscillator down to 190 4100 nm, Applied physics letters, vol.80, p.11, 2002.

M. Couprie, Historical survey of free electron lasers, CERN Yellow Reports: School Proceedings, vol.1, p.195, 2018.
URL : https://hal.archives-ouvertes.fr/hal-02074759

P. Dobiasch, P. Meystre, and M. Scully, Optical wiggler free-electron x-ray laser in the 5 4105 angstrom region, IEEE journal of quantum electronics, vol.19, p.12, 1983.

B. Girard, Optical frequency multiplication by an optical klystron, Physical review letters, vol.53, p.12, 1984.

V. Litvinenko, B. Burnham, J. Madey, and Y. Wu, Giant laser pulses in the DUKE storage ring UV FEL. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spec-4110 trometers, Detectors and Associated Equipment, vol.358, p.12, 1995.

G. De-ninno, Generation of ultrashort coherent vacuum ultraviolet pulses using electron storage rings: a new bright light source for experiments, Physical review letters, vol.101, p.12, 2008.

M. Labat, Coherent harmonic generation on UVSOR-II storage ring. The European 4115, Physical Journal D, vol.44, p.12, 2007.

M. Labat, M. Hosaka, M. Shimada, M. Katoh, and M. Couprie, Optimization of a seeded free-electron laser with helical undulators, Physical review letters, vol.101, p.12, 2008.

S. Thorin, M. Brandin, S. Werin, K. Goldammer, and J. Bahrdt, Start-to-end simulations for a seeded harmonic generation free electron laser, Physical Review Special Topics-Accelerators, vol.4120, p.12, 2007.

A. Fauchet, J. Feinstein, A. Gover, and R. Pantell, Visible and ultraviolet radiation generation using a gas-loaded free-electron laser, IEEE journal of quantum electronics, vol.20, p.12, 1984.

N. M. Kroll and W. A. Mcmullin, Stimulated emission from relativistic electrons passing 4125 through a spatially periodic transverse magnetic field, Physical Review A, vol.17, p.12, 1978.

G. Dattoli, A. Marino, A. Renieri, and F. Romanelli, Progress in the hamiltonian picture of the free-electron laser, IEEE Journal of Quantum Electronics, vol.17, pp.1371-1387, 1981.

R. Bonifacio, F. Casagrande, and G. Casati, Cooperative and chaotic transition of a free elec-4130 tron laser hamiltonian model, Optics Communications, vol.40, pp.219-223, 1982.

R. Bonifacio, F. Casagrande, and C. Pellegrini, Hamiltonian model of a free electron laser, Optics communications, vol.61, p.12, 1987.

A. Kondratenko and E. Saldin, Generating of coherent radiation by a relativistic electron beam in an ondulator, Part. Accel, vol.10, p.12, 1980.

R. Bonifacio, C. Pellegrini, and L. Narducci, Collective instabilities and high-gain regime free electron laser, AIP Conference Proceedings, vol.118, p.50, 1984.

K. Kim, Three-dimensional analysis of coherent amplification and self-amplified spontaneous emission in free-electron lasers, Physical review letters, vol.57, p.12, 1986.

S. Gold, D. Hardesty, A. Kinkead, L. Barnett, and V. Granatstein, High-gain 35-GHz free-4140 electron laser-amplifier experiment, Physical review letters, vol.52, p.13, 1984.

T. Orzechowski, Microwave radiation from a high-gain free-electron laser amplifier, Physical review letters, vol.54, p.13, 1985.

V. Ayvazyan, Generation of GW radiation pulses from a VUV free-electron laser operating in the femtosecond regime, Physical review letters, vol.88, p.13, 2002.
URL : https://hal.archives-ouvertes.fr/in2p3-00011350

R. Bonifacio, Physics of the high-gain fel and superradiance. La Rivista del Nuovo Cimento, vol.13, p.69, 1978.

M. Hogan, Measurements of gain larger than 10 5 at 12 µm in a self-amplified spontaneous-emission free-electron laser, Physical Review Letters, vol.81, p.13, 1998.

M. Babzien, Observation of self-amplified spontaneous emission in the near-infrared 4150 and visible wavelengths, Physical Review E, vol.57, p.13, 1998.

S. Milton, Observation of self-amplified spontaneous emission and exponential growth at 530 nm, Physical review letters, vol.85, p.13, 2000.

J. Andruszkow, First observation of self-amplified spontaneous emission in a freeelectron laser at 109 nm wavelength, Physical Review Letters, vol.85, p.13, 2000.
URL : https://hal.archives-ouvertes.fr/in2p3-00007920

A. Tremaine, Experimental characterization of nonlinear harmonic radiation from a visible self-amplified spontaneous emission free-electron laser at saturation. Physical review letters, vol.88, p.13, 2002.

P. Emma, Demonstration of self-seeding in a hard-X-ray free-electron laser, In Nat. Photonics, vol.6, p.13, 2012.

T. Ishikawa, A compact X-ray free-electron laser emitting in the sub-ångström region, nature photonics, vol.6, p.13, 2012.

H. Kang, Fel performance achieved at PAL-XFEL using a three-chicane bunch compression scheme, Journal of Synchrotron Radiation, vol.26, p.13, 2019.

C. Milne, SwissFEL: the Swiss X-ray free electron laser, Applied Sciences, vol.7, p.720, 2017.

W. Decking and H. Weise, Commissioning of the european xfel accelerator, p.13, 2017.

L. Yu, High-gain harmonic-generation free-electron laser, Science, vol.289, p.16, 2000.

A. A. Zholents, Method of an enhanced self-amplified spontaneous emission for x-ray free electron lasers, Physical Review Special Topics-Accelerators and Beams, vol.8, p.14, 2005.

A. Marinelli, Towards attosecond science at LCLS and LCLS-II, Presentation at Greece workshop titled Physics and Applications of High Brightness Beams, p.14, 2019.

J. Feldhaus, E. Saldin, J. Schneider, E. Schneidmiller, and M. Yurkov, Possible application 4175 of x-ray optical elements for reducing the spectral bandwidth of an X-ray SASE FEL, Optics Communications, vol.140, p.211, 1997.

G. Geloni, V. Kocharyan, and E. Saldin, A novel self-seeding scheme for hard X-ray FELs, Journal of Modern Optics, vol.58, p.211, 2011.

J. Amann, Demonstration of self-seeding in a hard-x-ray free-electron laser, Nature, vol.4180, issue.6, p.211, 2012.

D. Ratner, Experimental demonstration of a soft x-ray self-seeded free-electron laser, Physical review letters, vol.114, p.15, 2015.

M. Yabashi and T. Tanaka, X-rays: Self-seeded FEL emits hard x-rays, Nature Photonics, vol.6, p.211, 2012.

A. Doyuran, Characterization of a high-gain harmonic-generation free-electron laser at saturation, Physical review letters, vol.86, p.15, 2001.

L. Yu, First ultraviolet high-gain harmonic-generation free-electron laser, Physical review letters, vol.91, p.16, 2003.

J. Wu and L. H. Yu, Coherent hard x-ray production by cascading stages of high gain harmonic 4190 generation, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.475, p.16, 2001.

E. Saldin, E. Schneidmiller, and M. Yurkov, Study of a noise degradation of amplification process in a multistage HGHG FEL, Optics Communications, vol.202, p.211, 2002.

A. Gover and E. Dyunin, Collective-interaction control and reduction of optical frequency 4195 shot noise in charged-particle beams, Physical review letters, vol.102, p.16, 2009.

E. Allaria, Highly coherent and stable pulses from the fermi seeded free-electron laser in the extreme ultraviolet, Nature Photonics, vol.6, p.16, 2012.

G. Stupakov, Using the beam-echo effect for generation of short-wavelength radiation. Physical review letters, vol.102, p.211, 2009.

A. Thomas, Transport et manipulation d'électrons produits par interaction laser plasma sur la ligne COXINEL (PhD, vol.18, p.182, 2018.

O. Chubar, P. Elleaume, and J. Chavanne, A three-dimensional magnetostatics computer code for insertion devices, Journal of synchrotron radiation, vol.5, p.117, 1998.

C. Benabderrahmane, Development and operation of a Pr 2 Fe 1 4B based cryogenic permanent magnet undulator for a high spatial resolution x-ray beam line, Physical Review Accelerators and Beams, vol.20, p.95, 2017.

F. Marteau, Variable high gradient permanent magnet quadrupole (QUAPEVA), Applied Physics Letters, vol.111, p.170, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01861891

A. Ghaith, Tunable high gradient quadrupoles for a laser plasma acceleration based FEL. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.909, p.170, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01952217

A. Ghaith, Permanent magnet-based quadrupoles for plasma acceleration sources, Instruments, vol.3, p.20, 2019.
URL : https://hal.archives-ouvertes.fr/hal-02148268

O. Chubar, P. Elleaume, S. Kuznetsov, and A. A. Snigirev, Physical optics computer code optimized for synchrotron radiation, Optical Design and Analysis Software II, vol.4769, p.131, 2002.

J. M. Hill, Differential equations and group methods for scientists and engineers, p.25, 1992.

N. Chauvin, Transverse beam dynamics, p.25, 2016.

M. Bukov, L. D'alessio, and A. Polkovnikov, Universal high-frequency behavior of periodically driven systems: from dynamical stabilization to floquet engineering, Advances in Physics, vol.64, p.25, 2015.

T. Roser, A. Chao, and M. Tigner, Handbook of accelerator physics and engineering, vol.150, p.26, 2002.

K. Halbach, Permanent magnet undulators, Le Journal de Physique Colloques, vol.44, p.77, 1983.
URL : https://hal.archives-ouvertes.fr/jpa-00222549

D. Meeker, Finite element method magnetics, FEMM, vol.4, p.116, 2010.

J. D. Jackson, Classical electrodynamics, p.33, 1999.

K. Kim, Brightness, coherence and propagation characteristics of synchrotron radiation, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.246, p.36, 1986.

R. Coisson and R. Walker, Phase space distribution of brilliance of undulator sources, International Society for Optics 4235 and Photonics, vol.582, p.36, 1986.

K. Kim, Brightness and coherence of radiation from undulators and high-gain free electron lasers, 1987.

R. P. Walker, Insertion devices: undulators and wigglers, 1998.

R. R. Lindberg and K. Kim, Compact representations of partially coherent undulator radia-4240 tion suitable for wave propagation, Physical Review Special Topics-Accelerators and Beams, vol.18, p.90702, 2015.

R. P. Walker, Undulator radiation brightness and coherence near the diffraction limit, Physical Review Accelerators and Beams, vol.22, p.36, 2019.

J. A. Clarke, The science and technology of undulators and wigglers, vol.4, p.134, 2004.

R. Bonifacio, L. De-salvo, P. Pierini, N. Piovella, and C. Pellegrini, Spectrum, temporal structure, and fluctuations in a high-gain free-electron laser starting from noise, Physical review letters, vol.73, p.52, 1994.

Z. Huang and K. Kim, Review of x-ray free-electron laser theory, Physical Review Special 4250 Topics-Accelerators and Beams, vol.10, p.34801, 2007.

C. Pellegrini, A. Marinelli, and S. Reiche, The physics of X-ray free-electron lasers, Reviews of Modern Physics, vol.88, p.50, 2016.

Y. Ding, Measurements and simulations of ultralow emittance and ultrashort electron beams in the linac coherent light source, Physical review letters, vol.102, p.52, 2009.

E. L. Saldin, E. A. Schneidmiller, and M. Yurkov, Statistical properties of radiation from vuv and x-ray free electron laser, Optics communications, vol.148, p.52, 1998.

M. Xie, Design optimization for an x-ray free electron laser driven by slac linac, Proceedings Particle Accelerator Conference, vol.1, p.185, 1995.

C. Pellegrini, Free electron lasers: development and applications, Part. Accel, vol.33, p.53, 1990.

Z. Huang and K. Kim, Three-dimensional analysis of harmonic generation in high-gain free-electron lasers, Physical Review E, vol.62, p.54, 2000.

M. Couprie, The lunex5 project in france, Journal of Physics: Conference Series, vol.425, p.58, 2013.
URL : https://hal.archives-ouvertes.fr/in2p3-00740253

M. Couprie, The lunex5 project in france, X-Ray Lasers, pp.55-62, 2012.
URL : https://hal.archives-ouvertes.fr/in2p3-00740253

M. Couprie, Strategies towards a compact xuv free electron laser adopted for the lunex5 project, Journal of Modern Optics, vol.63, p.55, 2016.

J. Freericks, H. Krishnamurthy, and T. Pruschke, Theoretical description of time-resolved photoemission spectroscopy: application to pump-probe experiments, Physical review letters, vol.4270, p.55, 2009.

A. Azima, Time-resolved pump-probe experiments beyond the jitter limitations at flash, Applied Physics Letters, vol.94, p.55, 2009.

T. Wang, Femtosecond single-shot imaging of nanoscale ferromagnetic order in co/pd multilayers using resonant x-ray holography, Physical review letters, vol.108, p.55, 2012.
URL : https://hal.archives-ouvertes.fr/in2p3-00724499

C. Rechatin, Controlling the phase-space volume of injected electrons in a laserplasma accelerator, Physical review letters, vol.102, p.56, 2009.
URL : https://hal.archives-ouvertes.fr/hal-00498543

E. Fels-of,

G. Lambert, Injection of harmonics generated in gas in a free-electron laser providing 4280 intense and coherent extreme-ultraviolet light, Nature physics, vol.4, p.153, 2008.

C. Evain, Study of high harmonic generation at synchrotron SOLEIL using echo enabling technique, Proceedings of the First International Particle Accelerator Conference, p.57, 2010.

S. Reiche, 3: a fully 3d time-dependent FEL simulation code. Nuclear Instru-4285 ments and Methods in, Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.1, p.219, 1999.

M. Migliorati, Intrinsic normalized emittance growth in laser-driven electron accelerators, Physical Review Special Topics-Accelerators and Beams, vol.16, p.58, 2013.

K. Floettmann and V. V. Paramonov, Beam dynamics in transverse deflecting rf structures

, Physical Review Special Topics-Accelerators and Beams, vol.17, p.24001, 2014.

K. Floettmann, Some basic features of the beam emittance, Physical Review Special Topics-Accelerators and Beams, vol.6, p.34202, 2003.

P. Antici, Laser-driven electron beamlines generated by coupling laser-plasma sources with conventional transport systems, Journal of Applied Physics, vol.112, p.58, 2012.

W. Leemans, Laser-driven plasma-based accelerators: Wakefield excitation, channel guiding, and laser triggered particle injection, Physics of Plasmas, vol.5, p.59, 1998.

C. Lin, Long-range persistence of femtosecond modulations on laser-plasmaaccelerated electron beams, Physical review letters, vol.108, p.59, 2012.

W. H. Bennett, Magnetically self-focussing streams, Physical Review, vol.45, p.59, 1934.

J. Rosenzweig, B. Breizman, T. Katsouleas, and J. Su, Acceleration and focusing of electrons in two-dimensional nonlinear plasma wake fields, Physical Review A, vol.44, p.60, 1991.

P. Chen, Grand disruption: A possible final focusing mechanism for linear colliders, Part. Accel, vol.20, p.60, 1986.

R. Lehe, C. Thaury, E. Guillaume, A. Lifschitz, and V. Malka, Laser-plasma lens for laser-4305 wakefield accelerators, Physical Review Special Topics-Accelerators and Beams, vol.17, p.60, 2014.

W. K. Panofsky and W. R. Baker, A focusing device for the external 350-mev proton beam of the 184-inch cyclotron at berkeley, Review of Scientific Instruments, vol.21, p.60, 1950.

J. Röckemann, Direct measurement of focusing fields in active plasma lenses. Phys-4310 ical, Review Accelerators and Beams, vol.21, p.60, 2018.

A. Tauschwitz, Plasma lens focusing and plasma channel transport for heavy ion fusion, Fusion engineering and design, vol.32, p.60, 1996.

N. Nakanii, Transient magnetized plasma as an optical element for high power laser pulses, Physical Review Special Topics-Accelerators and Beams, vol.18, p.60, 2015.

J. Van-tilborg, Active plasma lensing for relativistic laser-plasma-accelerated electron beams, Physical review letters, vol.115, p.184802, 2015.

J. Van-tilborg, Nonuniform discharge currents in active plasma lenses, Physical Review Accelerators and Beams, vol.20, p.32803, 2017.

A. Marocchino, Experimental characterization of the effects induced by passive plasma 4320 lens on high brightness electron bunches, Applied Physics Letters, vol.111, p.184101, 2017.

R. Pompili, Focusing of high-brightness electron beams with active-plasma lenses, Physical review letters, vol.121, p.60, 2018.

T. Seggebrock, A. Maier, I. Dornmair, and F. Grüner, Bunch decompression for laserplasma driven free-electron laser demonstration schemes, Physical Review Special Topics-4325 Accelerators and Beams, vol.16, p.60, 2013.

A. Maier, Demonstration scheme for a laser-plasma-driven free-electron laser, Physical Review X, vol.2, p.60, 2012.

A. Loulergue, Beam manipulation for compact laser wakefield accelerator based freeelectron lasers, New Journal of Physics, vol.17, p.69, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01164366

T. Liu, T. Zhang, D. Wang, and Z. Huang, Compact beam transport system for free-electron lasers driven by a laser plasma accelerator, Physical Review Accelerators and Beams, vol.20, p.60, 2017.

Z. Huang, Y. Ding, and C. B. Schroeder, Compact x-ray free-electron laser from a laser-plasma accelerator using a transverse-gradient undulator, Physical review letters, vol.109, p.204801, 2012.

H. Schlenvoigt, A compact synchrotron radiation source driven by a laser-plasma wakefield accelerator, Nature Physics, vol.4, p.67, 2008.

M. Fuchs, Laser-driven soft-x-ray undulator source, Nature physics, vol.5, p.67, 2009.

G. Lambert, Progress on the generation of undulator radiation in the uv from a plasmabased electron beam, Proceed. FEL conf, vol.64, p.67, 2012.

O. Chubar and P. Elleaume, Accurate and efficient computation of synchrotron radiation in the near field region, proc. of the EPAC98 Conference, vol.65, p.206, 1998.

M. P. Anania, An ultrashort pulse ultra-violet radiation undulator source driven by a 4345 laser plasma wakefield accelerator, Applied Physics Letters, vol.104, p.67, 2014.

A. Loulergue, Experiment preparation towards a demonstration of laser plasma based free electron laser amplification, Advances in X-ray Free-Electron Lasers Instrumentation III, vol.9512, p.67, 2015.

K. L. Brown, First-and second-order matrix theory for the design of beam transport systems 4350 and charged particle spectrometers, p.68, 1971.

J. Payet, Beta code. CEA

M. Labat, Robustness of a plasma acceleration based free electron laser, Physical Review Accelerators and Beams, vol.21, p.70, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01839670

K. Floettmann, Astra: A space charge tracking algorithm. Manual, Version, vol.3, p.70, 2011.

M. Khojoyan, Transport studies of lpa electron beam towards the fel amplification at coxinel. Nuclear Instruments and Methods in, Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.829, p.168, 2016.

M. Borland and E. Aps, A flexible sdds-compliant code for accelerator simulation, p.70, 2000.

I. Agapov, G. Geloni, S. Tomin, and I. Zagorodnov, Ocelot: a software framework for synchrotron light source and fel studies, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.768, p.70, 2014.

Z. Huang and K. Kim, Formulas for coherent synchrotron radiation microbunching in a bunch compressor chicane, Physical Review Special Topics-Accelerators and Beams, vol.5, p.71, 2002.

P. Elleaume, J. Chavanne, and B. Faatz, Design considerations for a 1 å sase undulator. Nuclear 4370 Instruments and Methods in, Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.455, p.86, 2000.

T. Hara, Cryogenic permanent magnet undulators, Physical Review Special Topics-Accelerators and Beams, vol.7, p.80, 2004.

A. Ghaith, Progress of Pr 2 Fe 14 B based hybrid cryogenic undulators at, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01645980

M. Valléau, Construction and optimization of cryogenic undulators at SOLEIL, 60th ICFA Advanced Beam Dynamics Workshop on Future Light Sources (FLS'18), pp.193-198, 2018.

M. Valléau, Development of cryogenic permanent magnet undulators at SOLEIL. Syn-4380 chrotron Radiation News 31, p.75, 2018.

L. García, J. Chaboy, F. Bartolomé, and J. Goedkoop, Orbital magnetic moment instability at the spin reorientation transition of nd 2 fe 14 b, Physical review letters, vol.85, p.79, 2000.

R. P. Walker, Interference effects in undulator and wiggler radiation sources. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, p.4385

, Associated Equipment, vol.335, p.77, 1993.

D. Wollmann, A novel concept for phase error correction in superconductive undulators: theory and experimental verification, p.76, 2008.

P. Elleaume and X. Marechal, B2e: A software to compute synchrotron radiation from magnetic field data, p.77, 1991.

P. P. Ilinski, R. J. Dejus, E. S. Gluskin, and T. I. Morrison, Practical aspects of undulator radiation properties, Optics for High-Brightness Synchrotron Radiation Beamlines II, vol.2856, p.77, 1996.

Y. Li, B. Faatz, and J. Pfluger, Study of phase tolerances for the european xfel undulator system, p.77, 2007.

E. Moog, Development status of a superconducting undulator for the advanced photon source (aps), vol.10, p.77, 2010.

R. Tatchyn, Design considerations for a 60 meter pure permanent magnet undulator for the slac linac coherent light source (lcls), Proceedings of International Conference on Particle Accelerators, p.77, 1993.

K. Robinson, Hybrid undulator design considerations, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.250, p.77, 1986.

J. M. Coey, Rare-earth iron permanent magnets, vol.54, p.78, 1996.

S. Pan, The first generation rare earth permanent-magnet alloys, Rare Earth Permanent-4405

, Magnet Alloys' High Temperature Phase Transformation, p.78, 2013.

D. Li, R. La-bâthie, and . Perrier, Magnetic properties of Y 2 Fe 14 B and Nd 2 Fe 14 B single crystals, vol.78, p.105

M. Sagawa, S. Hirosawa, H. Yamamoto, S. Fujimura, and Y. Matsuura, Nd-fe-b permanent 4410 magnet materials, Japanese journal of applied physics, vol.26, p.78, 1987.

T. Bizen, Baking effect for ndfeb magnets against demagnetization induced by highenergy electrons, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, vol.515, p.78, 2003.

T. Bizen, High-energy electron irradiation of ndfeb permanent magnets: Dependence 4415 of radiation damage on the electron energy, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.574, p.78, 2007.

G. Yan, P. Mcguiness, J. Farr, and I. Harris, Optimisation of the processing of Nd-Fe-B with dysprosium addition, Journal of Alloys and Compounds, vol.491, p.78, 2010.

W. Gudat, J. Pflüger, J. Chatzipetros, and W. Peatman, An undulator/multipole wiggler for the bessy storage ring, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.246, p.79, 1986.

T. Tanaka, In-vacuum undulators, Proceedings of the 27th International Free Electron Conference, pp.370-377, 2005.

S. Yamamoto, Construction of an in-vacuum type undulator for production of undulator x rays in the 5-25 kev region, Review of scientific instruments, vol.63, p.79, 1992.

S. Yamamoto, Undulator development towards very short period lengths. Synchrotron Radiation News, vol.28, p.79, 2015.

S. Yamamoto, Development of undulator magnets towards very short period lengths

, Conference Proceedings, vol.1741, p.79, 2016.

D. Dufeu and P. Lethuillier, High sensitivity 2 t vibrating sample magnetometer, Review of scientific instruments, vol.70, p.79, 1999.

J. Huang, Challenges of in-vacuum and cryogenic permanent magnet undulator technologies, Physical Review Accelerators and Beams, vol.20, p.80, 2017.

O. Marcouille, In vacuum permanent magnet wiggler optimized for the production of hard x rays, Physical Review Special Topics-Accelerators and Beams, vol.16, p.80, 2013.

R. Kersevan, M. Hahn, I. Parat, and D. Schmied, Machine operation issue related to the vacuum system of the ESRF, vol.08, p.80, 2008.

T. Tanaka, T. Seike, and H. Kitamura, Measurement of spring-8 xfel undulator prototype with 4440 the safali system, In FEL, vol.8, p.80, 2008.

T. Tanaka, In situ correction of field errors induced by temperature gradient in cryogenic undulators, Physical Review Special Topics-Accelerators and Beams, vol.12, p.80, 2009.

J. Chavanne, Construction of a cryogenic permanent magnet undulator at the ESRF, vol.4445, p.81, 2008.

C. Benabderrahmane, Development of a PrFeB cryogenic undulator at SOLEIL, Proceedings of the 1st International Particle Accelerator Conference (IPAC'10), vol.80, p.82, 2010.

T. Tanaka, R. Tsuru, T. Nakajima, and H. Kitamura, Magnetic characterization for cryogenic 4450 permanent-magnet undulators: a first result, Journal of synchrotron radiation, vol.14, p.80, 2007.

C. Kuhn, H. Baecker, J. Bahrdt, A. Gaupp, and B. Schulz, Hall-probe bench for cryogenic in-vacuum-undulators, Proceedings of IPAC2013, p.80, 2013.

A. Murokh, Textured dysprosium and gadolinium poles for high-field, short-period 4455 hybrid undulators, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.735, p.81, 2014.

F. O'shea, A. Palmowski, E. Spranza, R. Agustsson, and Y. Chen, Development of a short period cryogenic undulator at radiabeam, p.81, 2017.

J. Chavanne, C. Penel, and P. Elleaume, Development and operation of a prototype cryogenic 4460 permanent magnet undulator at the ESRF, p.81, 2009.

J. Chavanne, G. Lebec, C. Penel, F. Revol, and C. Kitegi, First operational experience with a cryogenic permanent magnet undulator at the ESRF, The 23rd Particle Accelerator Conference, p.81, 2009.

M. Calvi, Commissioning results of the u14 cryogenic undulator at SLS, Journal of 4465 Physics: Conference Series, vol.425, p.82, 2013.

T. Schmidt and S. Reiche, Undulators for the SwissFEL, Proceedings of the FEL Conference, p.82, 2009.

C. Benabderrahmane, Development of a 2 m Pr 2 Fe 14 B cryogenic permanent magnet undulator at SOLEIL, Journal of Physics: Conference Series, vol.425, p.82, 2013.

T. Weitkamp, The tomography beamline anatomix at synchrotron SOLEIL, Journal of Physics: Conference Series, vol.849, p.82, 2017.

J. Schouten and E. Rial, Electron beam heating and operation of the cryogenic undulator and superconducting wigglers at diamond, Proceedings of the 2nd International Particle 4475 Accelerator Conference, p.82, 2011.

C. Ostenfeld and M. Pedersen, Cryogenic in-vacuum undulator at danfysik, IPAC, p.82, 2010.

J. Bahrdt and C. Kuhn, Cryogenic permanent magnet undulator development at hzb/bessy ii, Synchrotron Radiation News, vol.28, p.82, 2015.

J. Bahrdt, Measurements of the lattice modifications for the cryogenic undulator cpmu17, 7th International Particle Accelerator Conference (IPAC'16), p.82, 2016.

J. Huang, Design of a magnetic circuit for a cryogenic undulator in taiwan photon source, AIP Conference Proceedings, vol.1741, p.82, 2016.

J. Huang, C. Yang, T. Kohda, H. Kitamura, and C. Yang, Performance of tps cryogenic permanent magnet undulators at nsrrc, pp.1559-1561, 2019.

J. Huang, Development of cryogenic permanent magnet undulators at nsrrc, AIP Conference Proceedings, vol.2054, p.82, 2019.

H. Wang, The magnetic field measurement systems for a cryogenic undulator and a 4490 superconducting undulator at ssrf, Journal of Physics: Conference Series, vol.1067, p.82, 2018.

J. Chavanne, C. Penel, and P. Van-vaerenbergh, Construction of apple ii and in vacuum undulators at ESRF, PACS2001. Proceedings of the 2001 Particle Accelerator Conference (Cat. No. 01CH37268), vol.4, pp.2459-2461, 2001.

O. Chubar, Application of genetic algorithms to sorting, swapping and shimming of the SOLEIL undulator magnets, AIP Conference Proceedings, vol.879, p.92, 2007.

L. Walckiers, Cern accelerator school CAS 2009: Specialised course on magnets, p.102, 2009.

K. Halbach, Design of permanent multipole magnets with oriented rare earth cobalt mate-4500 rial, Nuclear instruments and methods, vol.169, p.105, 1980.

C. Benabderrahmane, Nd 2 Fe 14 B and Pr 2 Fe 14 B magnets characterisation and modelling for cryogenic permanent magnet undulator applications, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.669, p.130, 2012.

H. Hiroyoshi, High-field magnetization and crystalline field of R 2 Fe 14 B and R 2 Co 14 B, Journal of magnetism and magnetic materials, vol.70, p.130, 1987.

T. Mihara, Y. Iwashita, M. Kumada, A. Evgeny, and C. M. Spencer, Super strong permanent magnet quadrupole for a linear collider, IEEE transactions on applied superconductivity, vol.14, p.110, 2004.

T. Eichner, Miniature magnetic devices for laser-based, table-top free-electron lasers, Physical Review Special Topics-Accelerators and Beams, vol.10, p.113, 2007.

W. Lou, D. Hartill, D. Rice, D. Rubin, and J. Welch, Stability considerations of permanent magnet quadrupoles for cesr phase-iii upgrade, Physical Review Special Topics-Accelerators and Beams, vol.1, p.113, 1998.

J. Lim, Adjustable, short focal length permanent-magnet quadrupole based electron beam final focus system, Physical Review Special Topics-Accelerators and Beams, vol.8, p.113, 2005.

P. N'gotta, G. Le-bec, and J. Chavanne, Hybrid high gradient permanent magnet quadrupole, Physical Review Accelerators and Beams, vol.19, p.113, 2016.

T. Mihara, Y. Iwashita, M. Kumada, and C. M. Spencer, Variable permanent magnet quadrupole, IEEE transactions on applied superconductivity, vol.16, p.113, 2006.

G. Tosin, P. P. Sanchez, J. F. Citadini, and C. C. Vergasta, Super hybrid quadrupoles, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol.674, p.111, 2012.

S. C. Gottschalk and D. J. Taylor, Magnetic and engineering analysis of an adjustable strength permanent magnet quadrupole, Particle Accelerator Conference, 2005. PAC 2005. Proceedings of the, vol.111, p.113, 2005.

M. Modena, Design, assembly and first measurements of a short model for clic final focus hybrid quadrupole qd0, Conf. Proc, vol.1205201, p.113, 2012.

B. Shepherd, J. Clarke, and N. Collomb, Construction and measurement of novel adjustable permanent magnet quadrupoles for clic, vol.111, p.113, 2016.

M. J. Easton, Permanent-magnet quadrupoles for an interdigital h-mode drift tube linear accelerator: Optimization code and adjustable magnet design, Physical Review Accelerators and Beams, vol.21, p.113, 2018.

Y. Iwashita, T. Mihara, E. Antokhin, M. Kumada, and M. Aoki, Permanent magnet quadrupole for final focus for linear collider, vol.03, p.113, 2003.

D. Cesar, Demonstration of single-shot picosecond time-resolved mev electron imaging using a compact permanent magnet quadrupole based lens, Physical review letters, vol.117, p.113, 2016.

Z. Zhou, Compact high energy electron radiography system based on permanent magnet quadrupole, p.113, 2017.

R. Pompili, Compact and tunable focusing device for plasma wakefield acceleration, Review of Scientific Instruments, vol.89, p.113, 2018.

C. Benabderrahmane, M. Couprie, F. Forest, and O. Cosson, Adjustable magnetic mul-4545 tipole, 2016.

J. Simkin and C. Trowbridge, Three-dimensional nonlinear electromagnetic field computations, using scalar potentials, IEE Proceedings B-Electric Power Applications, vol.127, p.117, 1980.

L. Bec, G. Chavanne, J. Penel, and C. , Stretched wire measurement of multipole accelerator magnets, Physical Review Special Topics-Accelerators and Beams, vol.15, p.120, 2012.

A. Madur, Contribution à la métrologie magnétique des multipôles d'accélérateurs: les quadrupôles du synchroton SOLEIL, p.120, 2006.

D. W. Preston and R. W. Warren, Wiggler field measurements and corrections using the pulsed 4555 wire technique, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, vol.318, p.123, 1992.

D. Oumbarek-espinos, Skew quadrupole effect of laser plasma electron beam transport, Applied Sciences, vol.9, p.169, 2019.
URL : https://hal.archives-ouvertes.fr/hal-02348963

T. André, Control of laser plasma accelerated electrons for light sources, Nature com, vol.4560, issue.9, p.193, 2018.

L. Giannessi, Superradiant cascade in a seeded free-electron laser, Physical review letters, vol.110, p.153, 2013.

K. Desjardins, The diagon: an undulator diagnostic for SOLEIL low energy beamlines, IEEE Nuclear Science Symposium Conference Record, p.153, 2008.

T. André, , p.167, 2017.

M. Couprie, An application of laser plasma acceleration: towards a free-electron laser amplification, Plasma Physics and Controlled Fusion, vol.58, p.34020, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01342476

M. Couprie, T. Andre, and I. Andriyash, Coxinel: Towards free electron laser amplification to qualify laser plasma acceleration, Reza Kenkyu, vol.45, p.167, 2017.

P. Emma, Femtosecond and Subfemtosecond X-Ray Pulses from a Self-Amplified Spontaneous-Emission-Based Free-Electron Laser, Phys. Rev. Lett, vol.92, p.74801, 2004.

M. Scisciò, M. Migliorati, L. Palumbo, and P. Antici, Design and optimization of a compact laser-driven proton beamline, Scientific Reports, vol.8, p.6299, 2018.

X. Zhu, D. R. Broemmelsiek, and Y. Shin, Theoretical and numerical analyses of a slitmasked chicane for modulated bunch generation, Journal of Instrumentation, vol.10, p.167, 2015.

M. Chen, Z. Sheng, Y. Ma, and J. Zhang, Electron injection and trapping in a laser wakefield by field ionization to high-charge states of gases, vol.99, p.168, 2006.

J. Payet, . Beta-code, . Cea, and . Saclay,

M. Labat, Electron and photon diagnostics for plasma acceleration-based fels, Journal of synchrotron radiation, vol.25, p.175, 2018.

M. Borland, Elegant: A flexible SDDS-compliant code for accelerator simulation, p.4585

M. N. Polyanskiy, Refractive index database, p.190, 2016.

I. H. Malitson, A redetermination of some optical properties of calcium fluoride, Applied Optics, vol.2, p.190, 1963.

J. P. Boris, Relativistic plasma simulation-optimization of a hybrid code, Proc. 4th Conf

. Num, . Sim, and . Plasmas, , p.192, 1970.

D. Xiang and G. Stupakov, Echo-enabled harmonic generation free electron laser, Physical Review Special Topics-Accelerators and Beams, vol.12, p.215, 2009.
URL : https://hal.archives-ouvertes.fr/hal-02283598

D. Xiang, Demonstration of the echo-enabled harmonic generation technique for short-wavelength seeded free electron lasers, Physical review letters, vol.105, p.212, 2010.

Z. Zhao, First lasing of an echo-enabled harmonic generation free-electron laser, Nature Photonics, vol.6, p.212, 2012.

E. Hemsing, Highly coherent vacuum ultraviolet radiation at the 15th harmonic with echo-enabled harmonic generation technique, Physical Review Special Topics-Accelerators and Beams, vol.17, p.212, 2014.

E. Hemsing, Echo-enabled harmonics up to the 75th order from precisely tailored electron beams, Nature Photonics, vol.10, p.212, 2016.

P. R. Ribi?, Coherent soft x-ray pulses from an echo-enabled harmonic generation free-electron laser, Nature Photonics, vol.1, p.225, 2019.

L. H. Yu, Generation of intense UV radiation by subharmonically seeded single-pass free-4605 electron lasers, Physical Review A, vol.44, p.214, 1991.

M. Trovo, Status of the fermi@ elettra photoinjector, Proceedings of EPAC08, p.221, 2008.