D. Gauthier
Elettra Sincrotrone Trieste
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Publication
Featured researches published by D. Gauthier.
Nature Communications | 2013
E. Allaria; Filippo Bencivenga; Roberto Borghes; Flavio Capotondi; D. Castronovo; P. Charalambous; Paolo Cinquegrana; M.B. Danailov; G. De Ninno; Alexander Demidovich; S. Di Mitri; B. Diviacco; D. Fausti; William M. Fawley; Eugenio Ferrari; L. Froehlich; D. Gauthier; Alessandro Gessini; L. Giannessi; R. Ivanov; M. Kiskinova; Gabor Kurdi; B. Mahieu; N. Mahne; I. Nikolov; C. Masciovecchio; Emanuele Pedersoli; G. Penco; Lorenzo Raimondi; C. Serpico
Exploring the dynamics of matter driven to extreme non-equilibrium states by an intense ultrashort X-ray pulse is becoming reality, thanks to the advent of free-electron laser technology that allows development of different schemes for probing the response at variable time delay with a second pulse. Here we report the generation of two-colour extreme ultraviolet pulses of controlled wavelengths, intensity and timing by seeding of high-gain harmonic generation free-electron laser with multiple independent laser pulses. The potential of this new scheme is demonstrated by the time evolution of a titanium-grating diffraction pattern, tuning the two coherent pulses to the titanium M-resonance and varying their intensities. This reveals that an intense pulse induces abrupt pattern changes on a time scale shorter than hydrodynamic expansion and ablation. This result exemplifies the essential capabilities of the jitter-free multiple-colour free-electron laser pulse sequences to study evolving states of matter with element sensitivity.
Nature Photonics | 2016
Kevin C. Prince; E. Allaria; C. Callegari; Riccardo Cucini; G. De Ninno; S. Di Mitri; B. Diviacco; Enrico Ferrari; P. Finetti; D. Gauthier; L. Giannessi; N. Mahne; G. Penco; Oksana Plekan; Lorenzo Raimondi; P. Rebernik; Eléonore Roussel; Cristian Svetina; M. Trovo; M. Zangrando; M. Negro; Paolo A. Carpeggiani; Maurizio Reduzzi; Giuseppe Sansone; A N Grum-Grzhimailo; E V Gryzlova; S. I. Strakhova; Klaus Bartschat; Nicolas Douguet; Joel Venzke
Researchers demonstrate correlation of two colours (63.0 and 31.5 nm wavelengths) in a free-electron laser and control photoelectron angular distribution by adjusting phase with 3 attosecond resolution.
Journal of Synchrotron Radiation | 2015
E. Allaria; L. Badano; S. Bassanese; Flavio Capotondi; D. Castronovo; Paolo Cinquegrana; M.B. Danailov; G. D'Auria; Alexander Demidovich; R. De Monte; G. De Ninno; S. Di Mitri; B. Diviacco; William M. Fawley; Mario Ferianis; Eugenio Ferrari; G. Gaio; D. Gauthier; L. Giannessi; F. Iazzourene; Gabor Kurdi; N. Mahne; I. Nikolov; F. Parmigiani; G. Penco; Lorenzo Raimondi; P. Rebernik; Fabio Rossi; Eléonore Roussel; C. Scafuri
FERMI is a seeded free-electron laser (FEL) facility located at the Elettra laboratory in Trieste, Italy, and is now in user operation with its first FEL line, FEL-1, covering the wavelength range between 100 and 20 nm. The second FEL line, FEL-2, a high-gain harmonic generation double-stage cascade covering the wavelength range 20-4 nm, has also completed commissioning and the first user call has been recently opened. An overview of the typical operating modes of the facility is presented.
Nature Communications | 2016
Eugenio Ferrari; C. Spezzani; Franck Fortuna; Renaud Delaunay; F. Vidal; I. Nikolov; Paolo Cinquegrana; B. Diviacco; D. Gauthier; G. Penco; Primož Rebernik Ribič; Eléonore Roussel; Marco Trovò; J.-B. Moussy; Tommaso Pincelli; Lounès Lounis; Michele Manfredda; Emanuele Pedersoli; Flavio Capotondi; Cristian Svetina; N. Mahne; Marco Zangrando; Lorenzo Raimondi; Alexander Demidovich; L. Giannessi; Giovanni De Ninno; M.B. Danailov; E. Allaria; Maurizio Sacchi
The advent of free-electron laser (FEL) sources delivering two synchronized pulses of different wavelengths (or colours) has made available a whole range of novel pump–probe experiments. This communication describes a major step forward using a new configuration of the FERMI FEL-seeded source to deliver two pulses with different wavelengths, each tunable independently over a broad spectral range with adjustable time delay. The FEL scheme makes use of two seed laser beams of different wavelengths and of a split radiator section to generate two extreme ultraviolet pulses from distinct portions of the same electron bunch. The tunability range of this new two-colour source meets the requirements of double-resonant FEL pump/FEL probe time-resolved studies. We demonstrate its performance in a proof-of-principle magnetic scattering experiment in Fe–Ni compounds, by tuning the FEL wavelengths to the Fe and Ni 3p resonances.
Optics Express | 2013
Benoı̂t Mahieu; E. Allaria; D. Castronovo; M.B. Danailov; Alexander Demidovich; Giovanni De Ninno; Simone Di Mitri; William M. Fawley; Eugenio Ferrari; Lars Fröhlich; D. Gauthier; L. Giannessi; N. Mahne; G. Penco; Lorenzo Raimondi; S. Spampinati; C. Spezzani; Cristian Svetina; M. Trovo; Marco Zangrando
We present the experimental demonstration of a method for generating two spectrally and temporally separated pulses by an externally seeded, single-pass free-electron laser operating in the extreme-ultraviolet spectral range. Our results, collected on the FERMI@Elettra facility and confirmed by numerical simulations, demonstrate the possibility of controlling both the spectral and temporal features of the generated pulses. A free-electron laser operated in this mode becomes a suitable light source for jitter-free, two-colour pump-probe experiments.
Nature Communications | 2015
Giovanni De Ninno; D. Gauthier; B. Mahieu; Primož Rebernik Ribič; E. Allaria; Paolo Cinquegrana; Miltcho Bojanov Danailov; Alexander Demidovich; Eugenio Ferrari; L. Giannessi; G. Penco; P. Sigalotti; Matija Stupar
Intense ultrashort X-ray pulses produced by modern free-electron lasers (FELs) allow one to probe biological systems, inorganic materials and molecular reaction dynamics with nanoscale spatial and femtoscale temporal resolution. These experiments require the knowledge, and possibly the control, of the spectro-temporal content of individual pulses. FELs relying on seeding have the potential to produce spatially and temporally fully coherent pulses. Here we propose and implement an interferometric method, which allows us to carry out the first complete single-shot spectro-temporal characterization of the pulses, generated by an FEL in the extreme ultraviolet spectral range. Moreover, we provide the first direct evidence of the temporal coherence of a seeded FEL working in the extreme ultraviolet spectral range and show the way to control the light generation process to produce Fourier-limited pulses. Experiments are carried out at the FERMI FEL in Trieste.
Review of Scientific Instruments | 2014
Cesare Grazioli; C. Callegari; A. Ciavardini; M. Coreno; Fabio Frassetto; D. Gauthier; D. Golob; R. Ivanov; A. Kivimäki; B. Mahieu; Bojan Bucar; Miran Merhar; Paolo Miotti; L. Poletto; E. Polo; Barbara Ressel; C. Spezzani; G. De Ninno
We present the main features of CITIUS, a new light source for ultrafast science, generating tunable, intense, femtosecond pulses in the spectral range from infrared to extreme ultraviolet (XUV). The XUV pulses (about 10(5)-10(8) photons/pulse in the range 14-80 eV) are produced by laser-induced high-order harmonic generation in gas. This radiation is monochromatized by a time-preserving monochromator, also allowing one to work with high-resolution bandwidth selection. The tunable IR-UV pulses (10(12)-10(15) photons/pulse in the range 0.4-5.6 eV) are generated by an optical parametric amplifier, which is driven by a fraction of the same laser pulse that generates high order harmonics. The IR-UV and XUV pulses follow different optical paths and are eventually recombined on the sample for pump-probe experiments. We also present the results of two pump-probe experiments: with the first one, we fully characterized the temporal duration of harmonic pulses in the time-preserving configuration; with the second one, we demonstrated the possibility of using CITIUS for selective investigation of the ultra-fast dynamics of different elements in a magnetic compound.
Physical Review Letters | 2015
D. Gauthier; Primož Rebernik Ribič; Giovanni De Ninno; E. Allaria; Paolo Cinquegrana; M.B. Danailov; Alexander Demidovich; Eugenio Ferrari; L. Giannessi; B. Mahieu; G. Penco
We demonstrate the ability to control and shape the spectrotemporal content of extreme-ultraviolet (XUV) pulses produced by a seeded free-electron laser (FEL). The control over the spectrotemporal properties of XUV light was achieved by precisely manipulating the linear frequency chirp of the seed laser. Our results agree with existing theory, which allows us to retrieve the temporal properties (amplitude and phase) of the FEL pulse from measurements of the spectra as a function of the FEL operating parameters. Furthermore, we show the first direct evidence of the full temporal coherence of FEL light and generate Fourier limited pulses by fine-tuning the FEL temporal phase. The possibility of tailoring the spectrotemporal content of intense short-wavelength pulses represents the first step towards efficient nonlinear optics in the XUV to x-ray spectral region and will enable precise manipulation of core-electron excitations using the methods of coherent quantum control.
Physical Review Letters | 2014
Primož Rebernik Ribič; D. Gauthier; Giovanni De Ninno
We propose an effective scheme for the generation of intense coherent extreme ultraviolet light beams carrying orbital angular momentum (OAM). The light is produced by a high-gain harmonic-generation free-electron laser (FEL), seeded using a laser pulse with a transverse staircase-like phase pattern. During amplification, diffraction and mode selection drive the radiation profile towards a dominant OAM mode at saturation. With a seed laser at 260 nm, gigawatt power levels are obtained at wavelengths approaching those of soft x-rays. Compared to other proposed schemes to generate OAM with FELs, our approach is robust, easier to implement, and can be integrated into already existing FEL facilities without extensive modifications of the machine layout.
Nature Communications | 2016
D. Gauthier; E. Allaria; M. Coreno; Ivan Cudin; Hugo Dacasa; M.B. Danailov; Alexander Demidovich; Simone Di Mitri; B. Diviacco; Eugenio Ferrari; P. Finetti; Fabio Frassetto; D. Garzella; S. Künzel; Vincent Leroux; B. Mahieu; N. Mahne; Michael Meyer; T. Mazza; Paolo Miotti; G. Penco; Lorenzo Raimondi; Primož Rebernik Ribič; R. Richter; Eléonore Roussel; Sebastian Schulz; Luca Sturari; Cristian Svetina; M. Trovo; Paul Andreas Walker
Chirped pulse amplification in optical lasers is a revolutionary technique, which allows the generation of extremely powerful femtosecond pulses in the infrared and visible spectral ranges. Such pulses are nowadays an indispensable tool for a myriad of applications, both in fundamental and applied research. In recent years, a strong need emerged for light sources producing ultra-short and intense laser-like X-ray pulses, to be used for experiments in a variety of disciplines, ranging from physics and chemistry to biology and material sciences. This demand was satisfied by the advent of short-wavelength free-electron lasers. However, for any given free-electron laser setup, a limit presently exists in the generation of ultra-short pulses carrying substantial energy. Here we present the experimental implementation of chirped pulse amplification on a seeded free-electron laser in the extreme-ultraviolet, paving the way to the generation of fully coherent sub-femtosecond gigawatt pulses in the water window (2.3–4.4 nm).