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Related papers: Design of the AWAKE Run 2c transfer lines using nu…

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Plasma wakefields offer high acceleration gradients, orders of magnitude larger than conventional RF accelerators. However, the achievable luminosity remains relatively low, typically limited by repetition rate and the charge accelerated…

Accelerator Physics · Physics 2025-02-13 John P. Farmer , Giovanni Zevi Della Porta

Plasma wakefield acceleration (PWFA) is a novel acceleration technique with promising prospects for both particle colliders and light sources. However, PWFA research has so far been limited to a few large-scale accelerator facilities…

The spectroscopy of betatron radiation from the focusing plasma column can work as a powerful non-invasive beam diagnostic method for plasma wakefield acceleration experiments such as the AWAKE. In this paper, the effects of radial size…

Accelerator Physics · Physics 2022-04-29 Linbo Liang , Guoxing Xia , Hossein Saberi , John Patrick Farmer , Alexander Pukhov

Self-guided femtosecond laser pulses propagating in low-pressure gas can generate plasma filaments, establishing a new framework for plasma wakefield acceleration. Unlike conventional schemes relying on mechanically confined or preformed…

We present numerical simulations results on the injection and acceleration of a 10 MeV, 10 pC electrons beam in a plasma wave generated in a gas cell by a 2J, 45 fs laser beam. This modeling is related to the ESCULAP project in which the…

Plasma-Based Acceleration (PBA) has emerged as a promising approach to achieve ultra-high gradient particle acceleration. While extensive PBA studies have been conducted using laser, electron, and proton drivers, significant challenges…

Accelerator Physics · Physics 2025-06-18 Jiangdong Li , Jiancheng Yang , Guoxing Xia , Jie Liu , Wenlong Zhan , Ruihu Zhu

Plasma wakefields can enable very high accelerating gradients for frontier high energy particle accelerators, in excess of 10 GeV/m. To overcome limits on total acceleration achievable, specially shaped drive beams can be used in both…

We summarize and explain the realization of witness particle injection into wakefields for the AWAKE experiment. In AWAKE, the plasma wakefields are driven by a self-modulating relativistic proton bunch. To demonstrate that these wakefields…

Injection of well-defined, high-quality electron populations into plasma waves is a key challenge of plasma wakefield accelerators. Here, we report on the first experimental demonstration of plasma density downramp injection in an…

Presently available high-energy proton beams in circular accelerators carry enough momentum to accelerate high-intensity electron and positron beams to the TeV energy scale over several hundred meters of the plasma with a density of about…

Plasma Physics · Physics 2016-08-03 Alexey Petrenko , Konstantin Lotov , Alexander Sosedkin

An enhanced ionization injection scheme using a tightly focused laser pulse with intensity near the ionization potential to trigger the injection process in a mismatched pre-plasma channel has been proposed and examined via…

Accelerator Physics · Physics 2020-02-21 F. Li , C. J. Zhang , Y. Wan , Y. P. Wu , J. F. Hua , C. H. Pai , W. Lu , W. B. Mori , C. Joshi

High repetition rates and efficient energy transfer to the accelerating beam are important for a future linear collider based on the beam-driven plasma wakefield acceleration scheme (PWFA-LC). This paper reports the first results from the…

This is brief review of acceleration of electrons in plasma wakefields driven by either intense laser pulses or particle beams following lectures at the 2019 CERN Accelerator School on plasma accelerators, held at Sesimbra, Portugal. The…

Accelerator Physics · Physics 2020-07-09 A. G. R. Thomas

Plasma Wakefield Acceleration (PWFA) provides ultrahigh acceleration gradients of 10s of GeV/m, providing a novel path towards efficient, compact, TeV-scale linear colliders and high brightness free electron lasers. Critical to the success…

This report describes the conceptual steps in reaching the design of the AWAKE experiment currently under construction at CERN. We start with an introduction to plasma wakefield acceleration and the motivation for using proton drivers. We…

Plasma Physics · Physics 2016-08-03 A. Caldwell , E. Adli , L. Amorim , R. Apsimon , T. Argyropoulos , R. Assmann , A. -M. Bachmann , F. Batsch , J. Bauche , V. K. Berglyd Olsen , M. Bernardini , R. Bingham , B. Biskup , T. Bohl , C. Bracco , P. N. Burrows , G. Burt , B. Buttenschon , A. Butterworth , M. Cascella , S. Chattopadhyay , E. Chevallay , S. Cipiccia , H. Damerau , L. Deacon , P. Dirksen , S. Doebert , U. Dorda , E. Elsen , J. Farmer , S. Fartoukh , V. Fedosseev , E. Feldbaumer , R. Fiorito , R. Fonseca , F. Friebel , G. Geschonke , B. Goddard , A. A. Gorn , O. Grulke , E. Gschwendtner , J. Hansen , C. Hessler , S. Hillenbrand , W. Hofle , J. Holloway , C. Huang , M. Huther , D. Jaroszynski , L. Jensen , S. Jolly , A. Joulaei , M. Kasim , F. Keeble , R. Kersevan , N. Kumar , Y. Li , S. Liu , N. Lopes , K. V. Lotov , W. Lu , J. Machacek , S. Mandry , I. Martin , R. Martorelli , M. Martyanov , S. Mazzoni , M. Meddahi , L. Merminga , O. Mete , V. A. Minakov , J. Mitchell , J. Moody , A. -S. Muller , Z. Najmudin , T. C. Q. Noakes , P. Norreys , J. Osterhoff , E. Oz , A. Pardons , K. Pepitone , A. Petrenko , G. Plyushchev , J. Pozimski , A. Pukhov , O. Reimann , K. Rieger , S. Roesler , H. Ruhl , T. Rusnak , F. Salveter , N. Savard , J. Schmidt , H. von der Schmitt , A. Seryi , E. Shaposhnikova , Z. M. Sheng , P. Sherwood , L. Silva , F. Simon , L. Soby , A. P. Sosedkin , R. I. Spitsyn , T. Tajima , R. Tarkeshian , H. Timko , R. Trines , T. Tueckmantel , P. V. Tuev , M. Turner , F. Velotti , V. Verzilov , J. Vieira , H. Vincke , Y. Wei , C. P. Welsch , M. Wing , G. Xia , V. Yakimenko , H. Zhang , F. Zimmermann

In an electron wakefield accelerator, an intense laser pulse or charged particle beam excites plasma waves. Under proper conditions, electrons from the background plasma are trapped in the plasma wave and accelerated to ultra-relativistic…

Relativistic wakes produced by intense laser or particle beams propagating through plasmas are being considered as accelerators for next generation of colliders and coherent light sources. Such wakes have been shown to accelerate electrons…

Plasma Physics · Physics 2016-10-19 C. J. Zhang , J. F. Hua , Y. Wan , B. Guo , Y. P. Wu , C. -H. Pai , F. Li , H. -H. Chu , Y. Q. Gu , X. L. Xu , W. B. Mori , C. Joshi , J. Wang , W. Lu

The goal of the first phase of the AWAKE \cite{AWAKE1,AWAKE2} experiment at CERN is to measure the self-modulation \cite{SMI} of the $\sigma_z = 12\,\rm{cm}$ long SPS proton bunch into microbunches after traversing $10\,\rm{m}$ of plasma…

Accelerator Physics · Physics 2017-02-22 Marlene Turner , B. Biskup , S. Burger , E. Gschwendtner , S. Mazzoni , A. Petrenko

Plasma wake-field acceleration experiments are performed at the SPARC LAB test facility by using a gas-filled capillary plasma source composed of a dielectric capillary. The electron can reach GeV energy in a few centimeters, with an…

Laser wakefield accelerators promise to revolutionise many areas of accelerator science. However, one of the greatest challenges to their widespread adoption is the difficulty in control and optimisation of the accelerator outputs due to…