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Featured researches published by J. Bauche.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016

AWAKE, The Advanced Proton Driven Plasma Wakefield Acceleration Experiment at CERN

E. Gschwendtner; E. Adli; L. D. Amorim; Robert Apsimon; R. Assmann; A.M. Bachmann; F. Batsch; J. Bauche; V. K. Berglyd Olsen; M. Bernardini; R. Bingham; B. Biskup; T. Bohl; C. Bracco; Philip Burrows; Graeme Burt; B. Buttenschön; A. Butterworth; A. Caldwell; M. Cascella; Eric Chevallay; S. Cipiccia; H. Damerau; L. Deacon; P. Dirksen; S. Doebert; Ulrich Dorda; J. Farmer; Valentin Fedosseev; Eduard Feldbaumer

The Advanced Proton Driven Plasma Wakefield Acceleration Experiment (AWAKE) aims at studying plasma wakefield generation and electron acceleration driven by proton bunches. It is a proof-of-principle R&D experiment at CERN and the world׳s first proton driven plasma wakefield acceleration experiment. The AWAKE experiment will be installed in the former CNGS facility and uses the 400 GeV/c proton beam bunches from the SPS. The first experiments will focus on the self-modulation instability of the long (rms ~12 cm) proton bunch in the plasma. These experiments are planned for the end of 2016. Later, in 2017/2018, low energy (~15 MeV) electrons will be externally injected into the sample wakefields and be accelerated beyond 1 GeV. The main goals of the experiment will be summarized. A summary of the AWAKE design and construction status will be presented.


Nature | 2018

Acceleration of electrons in the plasma wakefield of a proton bunch

E. Adli; A. Ahuja; O. Apsimon; Robert Apsimon; A.-M. Bachmann; D. Barrientos; F. Batsch; J. Bauche; V. K. Berglyd Olsen; M. Bernardini; T. Bohl; Chiara Bracco; F. Braunmüller; Graeme Burt; B. Buttenschön; A. Caldwell; M. Cascella; J. Chappell; Eric Chevallay; M. Chung; D. Cooke; H. Damerau; L. Deacon; L.H. Deubner; Amos Dexter; S. Doebert; J. Farmer; V. N. Fedosseev; R. Fiorito; Ricardo Fonseca

High-energy particle accelerators have been crucial in providing a deeper understanding of fundamental particles and the forces that govern their interactions. To increase the energy of the particles or to reduce the size of the accelerator, new acceleration schemes need to be developed. Plasma wakefield acceleration1–5, in which the electrons in a plasma are excited, leading to strong electric fields (so called ‘wakefields’), is one such promising acceleration technique. Experiments have shown that an intense laser pulse6–9 or electron bunch10,11 traversing a plasma can drive electric fields of tens of gigavolts per metre and above—well beyond those achieved in conventional radio-frequency accelerators (about 0.1 gigavolt per metre). However, the low stored energy of laser pulses and electron bunches means that multiple acceleration stages are needed to reach very high particle energies5,12. The use of proton bunches is compelling because they have the potential to drive wakefields and to accelerate electrons to high energy in a single acceleration stage13. Long, thin proton bunches can be used because they undergo a process called self-modulation14–16, a particle–plasma interaction that splits the bunch longitudinally into a series of high-density microbunches, which then act resonantly to create large wakefields. The Advanced Wakefield (AWAKE) experiment at CERN17–19 uses high-intensity proton bunches—in which each proton has an energy of 400 gigaelectronvolts, resulting in a total bunch energy of 19 kilojoules—to drive a wakefield in a ten-metre-long plasma. Electron bunches are then injected into this wakefield. Here we present measurements of electrons accelerated up to two gigaelectronvolts at the AWAKE experiment, in a demonstration of proton-driven plasma wakefield acceleration. Measurements were conducted under various plasma conditions and the acceleration was found to be consistent and reliable. The potential for this scheme to produce very high-energy electron bunches in a single accelerating stage20 means that our results are an important step towards the development of future high-energy particle accelerators21,22.Electron acceleration to very high energies is achieved in a single step by injecting electrons into a ‘wake’ of charge created in a 10-metre-long plasma by speeding long proton bunches.


Archive | 2015

The AWAKE Electron Primary Beam Line

Janet Schmidt; Owain Rhodri Jones; P. Muggli; Matthew Fraser; L. Jensen; B. Biskup; E. Gschwendtner; E. Bravin; Alexey Vorozhtsov; Chiara Bracco; Alexey Petrenko; J. Bauche; Brennan Goddard; Steffen Döbert; Francesco Velotti; Stefano Mazzoni; V. Verzilov; Lia Merminga; Malika Meddahi; Ulrich Dorda


Conf. Proc. | 2013

Beam Transfer Line Design for a Plasma Wakefield Acceleration Experiment (AWAKE) at the CERN SPS

Chiara Bracco; M. Meddahi; G. Le Godec; P. Muggli; L. Jensen; A.Kosmicki; J. Bauche; C Mutin; H. Vincke; Konstantinos Papastergiou; O Osborne; A. Pardons; B. Goddard; E. Gschwendtner; F. Velotti; D Brethoux; Clerc


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2018

The electron accelerators for the AWAKE experiment at CERN—Baseline and Future Developments

K. Pepitone; S. Doebert; J. Bauche; M. Bernardini; Chiara Bracco; Graeme Burt; A. Chauchet; Eric Chevallay; Nicolas Chritin; S. Curt; H. Damerau; M. Dayyani Kelisani; C. Delory; V. N. Fedosseev; F. Friebel; F. Galleazzi; I. Gorgisyan; E. Gschwendtner; J. B. Hansen; L. Jensen; F. Keeble; L. Maricalva; Stefano Mazzoni; Gerard McMonagle; O. Mete; A. Pardons; C. Pasquino; V. Verzilov; Janet Schmidt; L. Soby


Archive | 2015

Extraction and beam transfer for the SHiP facility

B. Goddard; Benjamin Todd; L. Jensen; Jan Borburgh; Davide Tommasini; B. Puccio; Karel Cornelis; Gilles Le Godec; V. Kain; J. Bauche; Matthew Fraser; Bruno Balhan; Markus Zerlauth; J. Wenninger


Archive | 2013

DESIGN OF A MAGNETIC BUMP TAIL SCRAPING SYSTEM FOR THE CERN SPS

J. Bauche; Y. Le Borgne; S. Cettour Cave; F. Cerutti; K. Cornelis; F. Galleazzi; B. Goddard; L. Jensen; V. Kain; M. Meddahi; E.Veyrunes; H. Vincke; J. Wenninger; Alessio Mereghetti


Archive | 2011

RESULTS FROM THE HIRADMAT PRIMARY BEAM LINE COMMISSIONING

C. Hessler; M. Arruat; J. Bauche; K. Bestmann; J. Blanco Sancho; N. Conan; K. Cornelis; I. Efthymiopoulos; H. Gaillard; B. Goddard; D. Grenier; G. Gros; A. Habert; L. Jensen; V. Kain; G. Le Godec; M. Meddahi; S. Pelletier; P. Pepinster; B. Puccio; Chris Theis; P. Trilhe; G. Vandoni; J. Wenninger


Archive | 2017

JACoW : Beam Dynamics Studies of the HIE-ISOLDE Transfer Lines in the Presence of Magnetic Stray Fields

Jennifer Mertens; R. Ostojic; Matthew Fraser; Janet Schmidt; J. Bauche; B. Goddard


Archive | 2017

JACoW : SPS Slow Extracted Spill Quality During the 2016 Run

V. Kain; Matthew Fraser; Karel Cornelis; Charles-Mathieu Genton; J. Bauche; B. Goddard; Pascal Catherine; Francesco Velotti; Olivier Michels; Laurent Gatignon; Karsten Kahle; Linda Stoel

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