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Electron Beam Characterization of REBCO-Coated Conductors at Cryogenic Conditions

Particle accelerators with superconducting magnets operating at cryogenic temperatures use a beam screen (BS) liner that extracts heat generated by the circulating bunched charge particle beam before it can reach the magnets. The BS surface, commonly made of high–conductivity copper, provides a low...

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Autores principales: Haubner, Michal, Krkotic, Patrick, Serafim, Catarina, Petit, Valentine, Baglin, Vincent, Calatroni, Sergio, Henrist, Bernard, Romanov, Artur, Puig, Teresa, Gutierrez, Joffre
Lenguaje:eng
Publicado: 2023
Materias:
Acceso en línea:https://dx.doi.org/10.3390/app13052765
http://cds.cern.ch/record/2856737
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author Haubner, Michal
Krkotic, Patrick
Serafim, Catarina
Petit, Valentine
Baglin, Vincent
Calatroni, Sergio
Henrist, Bernard
Romanov, Artur
Puig, Teresa
Gutierrez, Joffre
author_facet Haubner, Michal
Krkotic, Patrick
Serafim, Catarina
Petit, Valentine
Baglin, Vincent
Calatroni, Sergio
Henrist, Bernard
Romanov, Artur
Puig, Teresa
Gutierrez, Joffre
author_sort Haubner, Michal
collection CERN
description Particle accelerators with superconducting magnets operating at cryogenic temperatures use a beam screen (BS) liner that extracts heat generated by the circulating bunched charge particle beam before it can reach the magnets. The BS surface, commonly made of high–conductivity copper, provides a low impedance for beam stability reasons, low secondary electron yield (SEY) to mitigate the electron–cloud (EC) effect, and low electron–stimulated desorption yield (ESD) to limit the dynamic pressure rise due to EC. Rare–earth barium copper oxide (REBCO) high–temperature superconductors (HTSs) recently reached technical maturity, are produced as coated conductor tapes (REBCO–CCs), and will be considered for application in future colliders to decrease the BS impedance and enable operation at around 50 K, consequently relaxing the cryogenic requirements. Aside from HTS properties, industry–grade REBCO–CCs also need qualification for EC and dynamic vacuum compatibility under accelerator–like conditions. Hence, we report the SEY and ESD measured at cryogenic temperatures of 12 K under low–energy electron irradiation of 0–1.4 keV. We also verify the sample compositions and morphologies using the XPS, SEM, and EDS methods. The energy and dose dependencies of ESD are comparable to those of technical–grade metals and one sample reached SEY = 1.2 after electron conditioning.
id cern-2856737
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2023
record_format invenio
spelling cern-28567372023-05-05T15:14:36Zdoi:10.3390/app13052765http://cds.cern.ch/record/2856737engHaubner, MichalKrkotic, PatrickSerafim, CatarinaPetit, ValentineBaglin, VincentCalatroni, SergioHenrist, BernardRomanov, ArturPuig, TeresaGutierrez, JoffreElectron Beam Characterization of REBCO-Coated Conductors at Cryogenic ConditionsAccelerators and Storage RingsParticle accelerators with superconducting magnets operating at cryogenic temperatures use a beam screen (BS) liner that extracts heat generated by the circulating bunched charge particle beam before it can reach the magnets. The BS surface, commonly made of high–conductivity copper, provides a low impedance for beam stability reasons, low secondary electron yield (SEY) to mitigate the electron–cloud (EC) effect, and low electron–stimulated desorption yield (ESD) to limit the dynamic pressure rise due to EC. Rare–earth barium copper oxide (REBCO) high–temperature superconductors (HTSs) recently reached technical maturity, are produced as coated conductor tapes (REBCO–CCs), and will be considered for application in future colliders to decrease the BS impedance and enable operation at around 50 K, consequently relaxing the cryogenic requirements. Aside from HTS properties, industry–grade REBCO–CCs also need qualification for EC and dynamic vacuum compatibility under accelerator–like conditions. Hence, we report the SEY and ESD measured at cryogenic temperatures of 12 K under low–energy electron irradiation of 0–1.4 keV. We also verify the sample compositions and morphologies using the XPS, SEM, and EDS methods. The energy and dose dependencies of ESD are comparable to those of technical–grade metals and one sample reached SEY = 1.2 after electron conditioning.oai:cds.cern.ch:28567372023
spellingShingle Accelerators and Storage Rings
Haubner, Michal
Krkotic, Patrick
Serafim, Catarina
Petit, Valentine
Baglin, Vincent
Calatroni, Sergio
Henrist, Bernard
Romanov, Artur
Puig, Teresa
Gutierrez, Joffre
Electron Beam Characterization of REBCO-Coated Conductors at Cryogenic Conditions
title Electron Beam Characterization of REBCO-Coated Conductors at Cryogenic Conditions
title_full Electron Beam Characterization of REBCO-Coated Conductors at Cryogenic Conditions
title_fullStr Electron Beam Characterization of REBCO-Coated Conductors at Cryogenic Conditions
title_full_unstemmed Electron Beam Characterization of REBCO-Coated Conductors at Cryogenic Conditions
title_short Electron Beam Characterization of REBCO-Coated Conductors at Cryogenic Conditions
title_sort electron beam characterization of rebco-coated conductors at cryogenic conditions
topic Accelerators and Storage Rings
url https://dx.doi.org/10.3390/app13052765
http://cds.cern.ch/record/2856737
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