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High flux circularly polarized gamma beam factory: coupling a Fabry-Perot optical cavity with an electron storage ring

We report and discuss high-flux generation of circularly polarized γ-rays by means of Compton scattering. The γ-ray beam results from the collision of an external-cavity-enhanced infrared laser beam and a low emittance relativistic electron beam. By operating a non-planar bow-tie high-finesse optica...

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Autores principales: Chaikovska, I., Cassou, K., Chiche, R., Cizeron, R., Cornebise, P., Delerue, N., Jehanno, D., Labaye, F., Marie, R., Martens, A., Peinaud, Y., Soskov, V., Variola, A., Zomer, F., Cormier, E., Lhermite, J., Dolique, V., Flaminio, R., Michel, C., Pinard, L., Sassolas, B., Akagi, T., Araki, S., Honda, Y., Omori, T., Terunuma, N., Urakawa, J., Miyoshi, S., Takahashi, T., Yoshitama, H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5114644/
https://www.ncbi.nlm.nih.gov/pubmed/27857146
http://dx.doi.org/10.1038/srep36569
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author Chaikovska, I.
Cassou, K.
Chiche, R.
Cizeron, R.
Cornebise, P.
Delerue, N.
Jehanno, D.
Labaye, F.
Marie, R.
Martens, A.
Peinaud, Y.
Soskov, V.
Variola, A.
Zomer, F.
Cormier, E.
Lhermite, J.
Dolique, V.
Flaminio, R.
Michel, C.
Pinard, L.
Sassolas, B.
Akagi, T.
Araki, S.
Honda, Y.
Omori, T.
Terunuma, N.
Urakawa, J.
Miyoshi, S.
Takahashi, T.
Yoshitama, H.
author_facet Chaikovska, I.
Cassou, K.
Chiche, R.
Cizeron, R.
Cornebise, P.
Delerue, N.
Jehanno, D.
Labaye, F.
Marie, R.
Martens, A.
Peinaud, Y.
Soskov, V.
Variola, A.
Zomer, F.
Cormier, E.
Lhermite, J.
Dolique, V.
Flaminio, R.
Michel, C.
Pinard, L.
Sassolas, B.
Akagi, T.
Araki, S.
Honda, Y.
Omori, T.
Terunuma, N.
Urakawa, J.
Miyoshi, S.
Takahashi, T.
Yoshitama, H.
author_sort Chaikovska, I.
collection PubMed
description We report and discuss high-flux generation of circularly polarized γ-rays by means of Compton scattering. The γ-ray beam results from the collision of an external-cavity-enhanced infrared laser beam and a low emittance relativistic electron beam. By operating a non-planar bow-tie high-finesse optical Fabry-Perot cavity coupled to a storage ring, we have recorded a flux of up to (3.5 ± 0.3) × 10(8) photons per second with a mean measured energy of 24 MeV. The γ-ray flux has been sustained for several hours. In particular, we were able to measure a record value of up to 400 γ-rays per collision in a full bandwidth. Moreover, the impact of Compton scattering on the electron beam dynamics could be observed resulting in a reduction of the electron beam lifetime correlated to the laser power stored in the Fabry-Perot cavity. We demonstrate that the electron beam lifetime provides an independent and consistent determination of the γ-ray flux. Furthermore, a reduction of the γ-ray flux due to intrabeam scattering has clearly been identified. These results, obtained on an accelerator test facility, warrant potential scaling and revealed both expected and yet unobserved effects. They set the baseline for further scaling of the future Compton sources under development around the world.
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spelling pubmed-51146442016-11-25 High flux circularly polarized gamma beam factory: coupling a Fabry-Perot optical cavity with an electron storage ring Chaikovska, I. Cassou, K. Chiche, R. Cizeron, R. Cornebise, P. Delerue, N. Jehanno, D. Labaye, F. Marie, R. Martens, A. Peinaud, Y. Soskov, V. Variola, A. Zomer, F. Cormier, E. Lhermite, J. Dolique, V. Flaminio, R. Michel, C. Pinard, L. Sassolas, B. Akagi, T. Araki, S. Honda, Y. Omori, T. Terunuma, N. Urakawa, J. Miyoshi, S. Takahashi, T. Yoshitama, H. Sci Rep Article We report and discuss high-flux generation of circularly polarized γ-rays by means of Compton scattering. The γ-ray beam results from the collision of an external-cavity-enhanced infrared laser beam and a low emittance relativistic electron beam. By operating a non-planar bow-tie high-finesse optical Fabry-Perot cavity coupled to a storage ring, we have recorded a flux of up to (3.5 ± 0.3) × 10(8) photons per second with a mean measured energy of 24 MeV. The γ-ray flux has been sustained for several hours. In particular, we were able to measure a record value of up to 400 γ-rays per collision in a full bandwidth. Moreover, the impact of Compton scattering on the electron beam dynamics could be observed resulting in a reduction of the electron beam lifetime correlated to the laser power stored in the Fabry-Perot cavity. We demonstrate that the electron beam lifetime provides an independent and consistent determination of the γ-ray flux. Furthermore, a reduction of the γ-ray flux due to intrabeam scattering has clearly been identified. These results, obtained on an accelerator test facility, warrant potential scaling and revealed both expected and yet unobserved effects. They set the baseline for further scaling of the future Compton sources under development around the world. Nature Publishing Group 2016-11-18 /pmc/articles/PMC5114644/ /pubmed/27857146 http://dx.doi.org/10.1038/srep36569 Text en Copyright © 2016, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Chaikovska, I.
Cassou, K.
Chiche, R.
Cizeron, R.
Cornebise, P.
Delerue, N.
Jehanno, D.
Labaye, F.
Marie, R.
Martens, A.
Peinaud, Y.
Soskov, V.
Variola, A.
Zomer, F.
Cormier, E.
Lhermite, J.
Dolique, V.
Flaminio, R.
Michel, C.
Pinard, L.
Sassolas, B.
Akagi, T.
Araki, S.
Honda, Y.
Omori, T.
Terunuma, N.
Urakawa, J.
Miyoshi, S.
Takahashi, T.
Yoshitama, H.
High flux circularly polarized gamma beam factory: coupling a Fabry-Perot optical cavity with an electron storage ring
title High flux circularly polarized gamma beam factory: coupling a Fabry-Perot optical cavity with an electron storage ring
title_full High flux circularly polarized gamma beam factory: coupling a Fabry-Perot optical cavity with an electron storage ring
title_fullStr High flux circularly polarized gamma beam factory: coupling a Fabry-Perot optical cavity with an electron storage ring
title_full_unstemmed High flux circularly polarized gamma beam factory: coupling a Fabry-Perot optical cavity with an electron storage ring
title_short High flux circularly polarized gamma beam factory: coupling a Fabry-Perot optical cavity with an electron storage ring
title_sort high flux circularly polarized gamma beam factory: coupling a fabry-perot optical cavity with an electron storage ring
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5114644/
https://www.ncbi.nlm.nih.gov/pubmed/27857146
http://dx.doi.org/10.1038/srep36569
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