Literature DB >> 17151663

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

J Faure1, C Rechatin, A Norlin, A Lifschitz, Y Glinec, V Malka.   

Abstract

In laser-plasma-based accelerators, an intense laser pulse drives a large electric field (the wakefield) which accelerates particles to high energies in distances much shorter than in conventional accelerators. These high acceleration gradients, of a few hundreds of gigavolts per metre, hold the promise of compact high-energy particle accelerators. Recently, several experiments have shown that laser-plasma accelerators can produce high-quality electron beams, with quasi-monoenergetic energy distributions at the 100 MeV level. However, these beams do not have the stability and reproducibility that are required for applications. This is because the mechanism responsible for injecting electrons into the wakefield is based on highly nonlinear phenomena, and is therefore hard to control. Here we demonstrate that the injection and subsequent acceleration of electrons can be controlled by using a second laser pulse. The collision of the two laser pulses provides a pre-acceleration stage which provokes the injection of electrons into the wakefield. The experimental results show that the electron beams obtained in this manner are collimated (5 mrad divergence), monoenergetic (with energy spread <10 per cent), tuneable (between 15 and 250 MeV) and, most importantly, stable. In addition, the experimental observations are compatible with electron bunch durations shorter than 10 fs. We anticipate that this stable and compact electron source will have a strong impact on applications requiring short bunches, such as the femtolysis of water, or high stability, such as radiotherapy with high-energy electrons or radiography for materials science.

Entities:  

Year:  2006        PMID: 17151663     DOI: 10.1038/nature05393

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


  27 in total

1.  Observation of longitudinal and transverse self-injections in laser-plasma accelerators.

Authors:  S Corde; C Thaury; A Lifschitz; G Lambert; K Ta Phuoc; X Davoine; R Lehe; D Douillet; A Rousse; V Malka
Journal:  Nat Commun       Date:  2013       Impact factor: 14.919

2.  Compact laser accelerators for X-ray phase-contrast imaging.

Authors:  Z Najmudin; S Kneip; M S Bloom; S P D Mangles; O Chekhlov; A E Dangor; A Döpp; K Ertel; S J Hawkes; J Holloway; C J Hooker; J Jiang; N C Lopes; H Nakamura; P A Norreys; P P Rajeev; C Russo; M J V Streeter; D R Symes; M Wing
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2014-01-27       Impact factor: 4.226

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

Authors:  R Pompili; D Alesini; M P Anania; S Arjmand; M Behtouei; M Bellaveglia; A Biagioni; B Buonomo; F Cardelli; M Carpanese; E Chiadroni; A Cianchi; G Costa; A Del Dotto; M Del Giorno; F Dipace; A Doria; F Filippi; M Galletti; L Giannessi; A Giribono; P Iovine; V Lollo; A Mostacci; F Nguyen; M Opromolla; E Di Palma; L Pellegrino; A Petralia; V Petrillo; L Piersanti; G Di Pirro; S Romeo; A R Rossi; J Scifo; A Selce; V Shpakov; A Stella; C Vaccarezza; F Villa; A Zigler; M Ferrario
Journal:  Nature       Date:  2022-05-25       Impact factor: 49.962

4.  Nanoparticle-insertion scheme to decouple electron injection from laser evolution in laser wakefield acceleration.

Authors:  Jiancai Xu; Leejin Bae; Mohamed Ezzat; Hyung Taek Kim; Jeong Moon Yang; Sang Hwa Lee; Jin Woo Yoon; Jae Hee Sung; Seong Ku Lee; Liangliang Ji; Baifei Shen; Chang Hee Nam
Journal:  Sci Rep       Date:  2022-07-01       Impact factor: 4.996

5.  Ultra-high dose rate radiation production and delivery systems intended for FLASH.

Authors:  Jonathan Farr; Veljko Grilj; Victor Malka; Srinivasan Sudharsan; Marco Schippers
Journal:  Med Phys       Date:  2022-05-05       Impact factor: 4.506

6.  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

7.  Exploring ultrashort high-energy electron-induced damage in human carcinoma cells.

Authors:  O Rigaud; N O Fortunel; P Vaigot; E Cadio; M T Martin; O Lundh; J Faure; C Rechatin; V Malka; Y A Gauduel
Journal:  Cell Death Dis       Date:  2010-09-09       Impact factor: 8.469

8.  Demonstration of self-truncated ionization injection for GeV electron beams.

Authors:  M Mirzaie; S Li; M Zeng; N A M Hafz; M Chen; G Y Li; Q J Zhu; H Liao; T Sokollik; F Liu; Y Y Ma; L M Chen; Z M Sheng; J Zhang
Journal:  Sci Rep       Date:  2015-10-01       Impact factor: 4.379

Review 9.  Laser-driven electron beam and radiation sources for basic, medical and industrial sciences.

Authors:  Kazuhisa Nakajima
Journal:  Proc Jpn Acad Ser B Phys Biol Sci       Date:  2015       Impact factor: 3.493

10.  Quasi-monoenergetic laser-plasma acceleration of electrons to 2 GeV.

Authors:  Xiaoming Wang; Rafal Zgadzaj; Neil Fazel; Zhengyan Li; S A Yi; Xi Zhang; Watson Henderson; Y-Y Chang; R Korzekwa; H-E Tsai; C-H Pai; H Quevedo; G Dyer; E Gaul; M Martinez; A C Bernstein; T Borger; M Spinks; M Donovan; V Khudik; G Shvets; T Ditmire; M C Downer
Journal:  Nat Commun       Date:  2013       Impact factor: 14.919

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