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AWAKE: a proton-driven plasma wakefield acceleration experiment at CERN

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AWAKE: a proton-driven plasma wakefield acceleration experiment at CERN. / AWAKE Collaboration.
In: Nuclear and Particle Physics Proceedings, Vol. 273-275, 30.05.2016, p. 175-180.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

AWAKE Collaboration 2016, 'AWAKE: a proton-driven plasma wakefield acceleration experiment at CERN', Nuclear and Particle Physics Proceedings, vol. 273-275, pp. 175-180. https://doi.org/10.1016/j.nuclphysbps.2015.09.022

APA

AWAKE Collaboration (2016). AWAKE: a proton-driven plasma wakefield acceleration experiment at CERN. Nuclear and Particle Physics Proceedings, 273-275, 175-180. https://doi.org/10.1016/j.nuclphysbps.2015.09.022

Vancouver

AWAKE Collaboration. AWAKE: a proton-driven plasma wakefield acceleration experiment at CERN. Nuclear and Particle Physics Proceedings. 2016 May 30;273-275:175-180. doi: 10.1016/j.nuclphysbps.2015.09.022

Author

AWAKE Collaboration. / AWAKE : a proton-driven plasma wakefield acceleration experiment at CERN. In: Nuclear and Particle Physics Proceedings. 2016 ; Vol. 273-275. pp. 175-180.

Bibtex

@article{b7d9bca9caac4c79befbf9bbe342c328,
title = "AWAKE: a proton-driven plasma wakefield acceleration experiment at CERN",
abstract = "The AWAKE Collaboration has been formed in order to demonstrate proton-driven plasma wakefield acceleration for the first time. This acceleration technique could lead to future colliders of high energy but of a much reduced length when compared to proposed linear accelerators. The CERN SPS proton beam in the CNGS facility will be injected into a 10 m plasma cell where the long proton bunches will be modulated into significantly shorter micro-bunches. These micro-bunches will then initiate a strong wakefield in the plasma with peak fields above 1 GV/m that will be harnessed to accelerate a bunch of electrons from about 20 MeV to the GeV scale within a few meters. The experimental program is based on detailed numerical simulations of beam and plasma interactions. The main accelerator components, the experimental area and infrastructure required as well as the plasma cell and the diagnostic equipment are discussed in detail. First protons to the experiment are expected at the end of 2016 and this will be followed by an initial three-four years experimental program. The experiment will inform future larger-scale tests of proton-driven plasma wakefield acceleration and applications to high energy colliders.",
author = "Burt, {Graeme Campbell} and Mike Jenkins and {AWAKE Collaboration}",
year = "2016",
month = may,
day = "30",
doi = "10.1016/j.nuclphysbps.2015.09.022",
language = "English",
volume = "273-275",
pages = "175--180",
journal = "Nuclear and Particle Physics Proceedings",
issn = "2405-6014",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - AWAKE

T2 - a proton-driven plasma wakefield acceleration experiment at CERN

AU - Burt, Graeme Campbell

AU - Jenkins, Mike

AU - AWAKE Collaboration

PY - 2016/5/30

Y1 - 2016/5/30

N2 - The AWAKE Collaboration has been formed in order to demonstrate proton-driven plasma wakefield acceleration for the first time. This acceleration technique could lead to future colliders of high energy but of a much reduced length when compared to proposed linear accelerators. The CERN SPS proton beam in the CNGS facility will be injected into a 10 m plasma cell where the long proton bunches will be modulated into significantly shorter micro-bunches. These micro-bunches will then initiate a strong wakefield in the plasma with peak fields above 1 GV/m that will be harnessed to accelerate a bunch of electrons from about 20 MeV to the GeV scale within a few meters. The experimental program is based on detailed numerical simulations of beam and plasma interactions. The main accelerator components, the experimental area and infrastructure required as well as the plasma cell and the diagnostic equipment are discussed in detail. First protons to the experiment are expected at the end of 2016 and this will be followed by an initial three-four years experimental program. The experiment will inform future larger-scale tests of proton-driven plasma wakefield acceleration and applications to high energy colliders.

AB - The AWAKE Collaboration has been formed in order to demonstrate proton-driven plasma wakefield acceleration for the first time. This acceleration technique could lead to future colliders of high energy but of a much reduced length when compared to proposed linear accelerators. The CERN SPS proton beam in the CNGS facility will be injected into a 10 m plasma cell where the long proton bunches will be modulated into significantly shorter micro-bunches. These micro-bunches will then initiate a strong wakefield in the plasma with peak fields above 1 GV/m that will be harnessed to accelerate a bunch of electrons from about 20 MeV to the GeV scale within a few meters. The experimental program is based on detailed numerical simulations of beam and plasma interactions. The main accelerator components, the experimental area and infrastructure required as well as the plasma cell and the diagnostic equipment are discussed in detail. First protons to the experiment are expected at the end of 2016 and this will be followed by an initial three-four years experimental program. The experiment will inform future larger-scale tests of proton-driven plasma wakefield acceleration and applications to high energy colliders.

U2 - 10.1016/j.nuclphysbps.2015.09.022

DO - 10.1016/j.nuclphysbps.2015.09.022

M3 - Journal article

VL - 273-275

SP - 175

EP - 180

JO - Nuclear and Particle Physics Proceedings

JF - Nuclear and Particle Physics Proceedings

SN - 2405-6014

ER -