Paper |
Title |
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MOPRB052 |
Gamma Factory at CERN: Design of a Proof-of-Principle Experiment |
685 |
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- Y. Dutheil, R. Alemany-Fernández, H. Bartosik, N. Biancacci, R. Bruce, P. Czodrowski, V. Fedosseev, B. Goddard, S. Hirlaender, J.M. Jowett, R. Kersevan, M. Kowalska, M. Lamont, D. Manglunki, J. Molson, A.V. Petrenko, M. Schaumann, F. Zimmermann
CERN, Meyrin, Switzerland
- S.E. Alden, A. Bosco, S.M. Gibson, L.J. Nevay
JAI, Egham, Surrey, United Kingdom
- A. Apyan
ANSL, Yerevan, Armenia
- E.G. Bessonov
LPI, Moscow, Russia
- A. Bosco, S.M. Gibson, L.J. Nevay
Royal Holloway, University of London, Surrey, United Kingdom
- F. Castelli
Università degli Studi di Milano, Milano, Italy
- F. Castelli, C. Curatolo, L. Serafini
INFN-Milano, Milano, Italy
- K. Kroeger
FSU Jena, Jena, Germany
- A. Martens
LAL, Orsay, France
- V. Petrillo
Universita’ degli Studi di Milano, Milano, Italy
- M. Sapinski, T. Stöhlker
GSI, Darmstadt, Germany
- G. Weber
IOQ, Jena, Germany
- Y.K. Wu
FEL/Duke University, Durham, North Carolina, USA
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The Gamma Factory (GF) initiative proposes to create novel research tools at CERN by producing, accelerating and storing highly relativistic partially stripped ion beams in the LHC rings and by exciting their atomic degrees of freedom by lasers, to produce high-energy photon beams. Their intensity would be several orders of magnitude higher than those of the presently operating light sources in the particularly interesting gamma-ray energy domain reaching up to 400 MeV. In this energy domain, the high-intensity photon beams can be used to produce secondary beams of polarized electrons, polarized positrons, polarized muons, neutrinos, neutrons and radioactive ions. Over the years 2017-2018 we have demonstrated that these partially stripped ion beams can be successfully produced, accelerated and stored in the CERN accelerator complex, including the LHC. The next step of the project is to build a proof of principle experiment in the SPS to validate the principal GF concepts. This contribution will present the initial conceptual design of this experiment along with its main challenge - the demonstration of the fast cooling method of partially stripped ion beams.
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DOI • |
reference for this paper
※ https://doi.org/10.18429/JACoW-IPAC2019-MOPRB052
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About • |
paper received ※ 19 May 2019 paper accepted ※ 20 May 2019 issue date ※ 21 June 2019 |
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WEPGW089 |
Calibration of the AWAKE Electron Spectrometer with Electrons Derived from a Partially Stripped Ion Beam |
2694 |
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- D.A. Cooke, M. Cascella, J. Chappell, S. Jolly, F. Keeble, M. Wing
UCL, London, United Kingdom
- R. Alemany-Fernández, J. Bauche, I. Gorgisyan, E. Gschwendtner, V. Kain, M.W. Krasny, S. Mazzoni, A.V. Petrenko
CERN, Meyrin, Switzerland
- P. La Penna, M. Quattri
ESO, Garching bei Muenchen, Germany
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The energy distribution of electrons accelerated in the wake of a self-modulated proton beam is measured using a magnetic spectrometer at AWAKE. The spectrometer was commissioned in 2017 and ran successfully throughout 2018. Imaging properties of the spectrometer system are studied via a combination of simulations and linear optics models and validated using mono-energetic electrons stripped from the partially stripped ion beam in the AWAKE beamline at CERN. These and other details of the calibration and performance will be presented.
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DOI • |
reference for this paper
※ https://doi.org/10.18429/JACoW-IPAC2019-WEPGW089
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About • |
paper received ※ 14 May 2019 paper accepted ※ 20 May 2019 issue date ※ 21 June 2019 |
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Export • |
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※ LaTeX,
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