Literature DB >> 35614244

Free-electron lasing with compact beam-driven plasma wakefield accelerator.

R Pompili1, D Alesini2, M P Anania2, S Arjmand2, M Behtouei2, M Bellaveglia2, A Biagioni2, B Buonomo2, F Cardelli2, M Carpanese3, E Chiadroni2, A Cianchi4,5,6, G Costa2, A Del Dotto2, M Del Giorno2, F Dipace2, A Doria3, F Filippi3, M Galletti4,5,6, L Giannessi2, A Giribono2, P Iovine7, V Lollo2, A Mostacci8, F Nguyen3, M Opromolla9, E Di Palma3, L Pellegrino2, A Petralia3, V Petrillo9, L Piersanti2, G Di Pirro2, S Romeo2, A R Rossi9, J Scifo2, A Selce3, V Shpakov2, A Stella2, C Vaccarezza2, F Villa2, A Zigler2,10, M Ferrario2.   

Abstract

The possibility to accelerate electron beams to ultra-relativistic velocities over short distances by using plasma-based technology holds the potential for a revolution in the field of particle accelerators1-4. The compact nature of plasma-based accelerators would allow the realization of table-top machines capable of driving a free-electron laser (FEL)5, a formidable tool to investigate matter at the sub-atomic level by generating coherent light pulses with sub-ångström wavelengths and sub-femtosecond durations6,7. So far, however, the high-energy electron beams required to operate FELs had to be obtained through the use of conventional large-size radio-frequency (RF) accelerators, bound to a sizeable footprint as a result of their limited accelerating fields. Here we report the experimental evidence of FEL lasing by a compact (3-cm) particle-beam-driven plasma accelerator. The accelerated beams are completely characterized in the six-dimensional phase space and have high quality, comparable with state-of-the-art accelerators8. This allowed the observation of narrow-band amplified radiation in the infrared range with typical exponential growth of its intensity over six consecutive undulators. This proof-of-principle experiment represents a fundamental milestone in the use of plasma-based accelerators, contributing to the development of next-generation compact facilities for user-oriented applications9.
© 2022. The Author(s), under exclusive licence to Springer Nature Limited.

Entities:  

Year:  2022        PMID: 35614244     DOI: 10.1038/s41586-022-04589-1

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  16 in total

1.  Monoenergetic beams of relativistic electrons from intense laser-plasma interactions.

Authors:  S P D Mangles; C D Murphy; Z Najmudin; A G R Thomas; J L Collier; A E Dangor; E J Divall; P S Foster; J G Gallacher; C J Hooker; D A Jaroszynski; A J Langley; W B Mori; P A Norreys; F S Tsung; R Viskup; B R Walton; K Krushelnick
Journal:  Nature       Date:  2004-09-30       Impact factor: 49.962

2.  Controlled injection and acceleration of electrons in plasma wakefields by colliding laser pulses.

Authors:  J Faure; C Rechatin; A Norlin; A Lifschitz; Y Glinec; V Malka
Journal:  Nature       Date:  2006-12-07       Impact factor: 49.962

3.  Energy doubling of 42 GeV electrons in a metre-scale plasma wakefield accelerator.

Authors:  Ian Blumenfeld; Christopher E Clayton; Franz-Josef Decker; Mark J Hogan; Chengkun Huang; Rasmus Ischebeck; Richard Iverson; Chandrashekhar Joshi; Thomas Katsouleas; Neil Kirby; Wei Lu; Kenneth A Marsh; Warren B Mori; Patric Muggli; Erdem Oz; Robert H Siemann; Dieter Walz; Miaomiao Zhou
Journal:  Nature       Date:  2007-02-15       Impact factor: 49.962

4.  High-efficiency acceleration of an electron beam in a plasma wakefield accelerator.

Authors:  M Litos; E Adli; W An; C I Clarke; C E Clayton; S Corde; J P Delahaye; R J England; A S Fisher; J Frederico; S Gessner; S Z Green; M J Hogan; C Joshi; W Lu; K A Marsh; W B Mori; P Muggli; N Vafaei-Najafabadi; D Walz; G White; Z Wu; V Yakimenko; G Yocky
Journal:  Nature       Date:  2014-11-06       Impact factor: 49.962

5.  Petawatt Laser Guiding and Electron Beam Acceleration to 8 GeV in a Laser-Heated Capillary Discharge Waveguide.

Authors:  A J Gonsalves; K Nakamura; J Daniels; C Benedetti; C Pieronek; T C H de Raadt; S Steinke; J H Bin; S S Bulanov; J van Tilborg; C G R Geddes; C B Schroeder; Cs Tóth; E Esarey; K Swanson; L Fan-Chiang; G Bagdasarov; N Bobrova; V Gasilov; G Korn; P Sasorov; W P Leemans
Journal:  Phys Rev Lett       Date:  2019-03-01       Impact factor: 9.161

6.  Optimal Beam Loading in a Laser-Plasma Accelerator.

Authors:  Manuel Kirchen; Sören Jalas; Philipp Messner; Paul Winkler; Timo Eichner; Lars Hübner; Thomas Hülsenbusch; Laurids Jeppe; Trupen Parikh; Matthias Schnepp; Andreas R Maier
Journal:  Phys Rev Lett       Date:  2021-04-30       Impact factor: 9.161

7.  Energy-Spread Preservation and High Efficiency in a Plasma-Wakefield Accelerator.

Authors:  C A Lindstrøm; J M Garland; S Schröder; L Boulton; G Boyle; J Chappell; R D'Arcy; P Gonzalez; A Knetsch; V Libov; G Loisch; A Martinez de la Ossa; P Niknejadi; K Põder; L Schaper; B Schmidt; B Sheeran; S Wesch; J Wood; J Osterhoff
Journal:  Phys Rev Lett       Date:  2021-01-08       Impact factor: 9.161

8.  Free-electron lasing at 27 nanometres based on a laser wakefield accelerator.

Authors:  Wentao Wang; Ke Feng; Lintong Ke; Changhai Yu; Yi Xu; Rong Qi; Yu Chen; Zhiyong Qin; Zhijun Zhang; Ming Fang; Jiaqi Liu; Kangnan Jiang; Hao Wang; Cheng Wang; Xiaojun Yang; Fenxiang Wu; Yuxin Leng; Jiansheng Liu; Ruxin Li; Zhizhan Xu
Journal:  Nature       Date:  2021-07-21       Impact factor: 49.962

9.  Control of laser plasma accelerated electrons for light sources.

Authors:  T André; I A Andriyash; A Loulergue; M Labat; E Roussel; A Ghaith; M Khojoyan; C Thaury; M Valléau; F Briquez; F Marteau; K Tavakoli; P N'Gotta; Y Dietrich; G Lambert; V Malka; C Benabderrahmane; J Vétéran; L Chapuis; T El Ajjouri; M Sebdaoui; N Hubert; O Marcouillé; P Berteaud; N Leclercq; M El Ajjouri; P Rommeluère; F Bouvet; J -P Duval; C Kitegi; F Blache; B Mahieu; S Corde; J Gautier; K Ta Phuoc; J P Goddet; A Lestrade; C Herbeaux; C Évain; C Szwaj; S Bielawski; A Tafzi; P Rousseau; S Smartsev; F Polack; D Dennetière; C Bourassin-Bouchet; C De Oliveira; M-E Couprie
Journal:  Nat Commun       Date:  2018-04-06       Impact factor: 14.919

10.  Time-resolved serial femtosecond crystallography at the European XFEL.

Authors:  Suraj Pandey; Richard Bean; Tokushi Sato; Ishwor Poudyal; Johan Bielecki; Jorvani Cruz Villarreal; Oleksandr Yefanov; Valerio Mariani; Thomas A White; Christopher Kupitz; Mark Hunter; Mohamed H Abdellatif; Saša Bajt; Valerii Bondar; Austin Echelmeier; Diandra Doppler; Moritz Emons; Matthias Frank; Raimund Fromme; Yaroslav Gevorkov; Gabriele Giovanetti; Man Jiang; Daihyun Kim; Yoonhee Kim; Henry Kirkwood; Anna Klimovskaia; Juraj Knoska; Faisal H M Koua; Romain Letrun; Stella Lisova; Luis Maia; Victoria Mazalova; Domingo Meza; Thomas Michelat; Abbas Ourmazd; Guido Palmer; Marco Ramilli; Robin Schubert; Peter Schwander; Alessandro Silenzi; Jolanta Sztuk-Dambietz; Alexandra Tolstikova; Henry N Chapman; Alexandra Ros; Anton Barty; Petra Fromme; Adrian P Mancuso; Marius Schmidt
Journal:  Nat Methods       Date:  2019-11-18       Impact factor: 47.990

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