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Magnetic Field Penetration of Niobium Thin Films Produced by the ARIES Collaboration
Superconducting (SC) thin film coatings on Cu substrates are already widely used as an alternative to bulk Nb SRF structures. Using Cu allows improved thermal stability compared to Nb due to having a greater thermal conductivity. Niobium thin film coatings also reduce the amount of Nb required to pr...
Autores principales: | , , , , , , , , , , , , , , , |
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Lenguaje: | eng |
Publicado: |
2022
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.18429/JACoW-SRF2021-SUPFDV007 http://cds.cern.ch/record/2846171 |
_version_ | 1780976620582993920 |
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author | Turner, Daniel Burt, Graeme Chyhyrynets, Eduard Dumbell, Keith Junginger, Tobias Leith, Stewart Malyshev, Oleg Medvids, Arturs Onufrijevs, Pavels Pira, Cristian Ries, Rastislav Seiler, Eugen Sublet, Alban Valizadeh, Reza Vogel, Michael Wilson, James |
author_facet | Turner, Daniel Burt, Graeme Chyhyrynets, Eduard Dumbell, Keith Junginger, Tobias Leith, Stewart Malyshev, Oleg Medvids, Arturs Onufrijevs, Pavels Pira, Cristian Ries, Rastislav Seiler, Eugen Sublet, Alban Valizadeh, Reza Vogel, Michael Wilson, James |
author_sort | Turner, Daniel |
collection | CERN |
description | Superconducting (SC) thin film coatings on Cu substrates are already widely used as an alternative to bulk Nb SRF structures. Using Cu allows improved thermal stability compared to Nb due to having a greater thermal conductivity. Niobium thin film coatings also reduce the amount of Nb required to produce a cavity. The performance of thin film Nb cavities is not as good as bulk Nb cavities. The H2020 ARIES WP15 collaboration studied the impact of substrate polishing and the effect produced on Nb thin film depositions. Multiple samples were produced from Cu and polished with various techniques. The polished Cu substrates were then coated with a Nb film at partner institutions. These samples were characterised with surface characterisation techniques for film morphology and structure. The SC properties were studied with 2 DC techniques, a vibrating sample magnetometer (VSM) and a magnetic field penetration (MFP) facility. The results conclude that both chemical polishing and electropolishing produce the best DC properties in the MFP facility. A comparison between the VSM and the MFP facility can be made for 10 $\mu$m thick samples, but not for 3 $\mu$m thick samples. |
id | cern-2846171 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2022 |
record_format | invenio |
spelling | cern-28461712023-01-14T22:17:44Zdoi:10.18429/JACoW-SRF2021-SUPFDV007http://cds.cern.ch/record/2846171engTurner, DanielBurt, GraemeChyhyrynets, EduardDumbell, KeithJunginger, TobiasLeith, StewartMalyshev, OlegMedvids, ArtursOnufrijevs, PavelsPira, CristianRies, RastislavSeiler, EugenSublet, AlbanValizadeh, RezaVogel, MichaelWilson, JamesMagnetic Field Penetration of Niobium Thin Films Produced by the ARIES CollaborationAccelerators and Storage RingsSuperconducting (SC) thin film coatings on Cu substrates are already widely used as an alternative to bulk Nb SRF structures. Using Cu allows improved thermal stability compared to Nb due to having a greater thermal conductivity. Niobium thin film coatings also reduce the amount of Nb required to produce a cavity. The performance of thin film Nb cavities is not as good as bulk Nb cavities. The H2020 ARIES WP15 collaboration studied the impact of substrate polishing and the effect produced on Nb thin film depositions. Multiple samples were produced from Cu and polished with various techniques. The polished Cu substrates were then coated with a Nb film at partner institutions. These samples were characterised with surface characterisation techniques for film morphology and structure. The SC properties were studied with 2 DC techniques, a vibrating sample magnetometer (VSM) and a magnetic field penetration (MFP) facility. The results conclude that both chemical polishing and electropolishing produce the best DC properties in the MFP facility. A comparison between the VSM and the MFP facility can be made for 10 $\mu$m thick samples, but not for 3 $\mu$m thick samples.oai:cds.cern.ch:28461712022 |
spellingShingle | Accelerators and Storage Rings Turner, Daniel Burt, Graeme Chyhyrynets, Eduard Dumbell, Keith Junginger, Tobias Leith, Stewart Malyshev, Oleg Medvids, Arturs Onufrijevs, Pavels Pira, Cristian Ries, Rastislav Seiler, Eugen Sublet, Alban Valizadeh, Reza Vogel, Michael Wilson, James Magnetic Field Penetration of Niobium Thin Films Produced by the ARIES Collaboration |
title | Magnetic Field Penetration of Niobium Thin Films Produced by the ARIES Collaboration |
title_full | Magnetic Field Penetration of Niobium Thin Films Produced by the ARIES Collaboration |
title_fullStr | Magnetic Field Penetration of Niobium Thin Films Produced by the ARIES Collaboration |
title_full_unstemmed | Magnetic Field Penetration of Niobium Thin Films Produced by the ARIES Collaboration |
title_short | Magnetic Field Penetration of Niobium Thin Films Produced by the ARIES Collaboration |
title_sort | magnetic field penetration of niobium thin films produced by the aries collaboration |
topic | Accelerators and Storage Rings |
url | https://dx.doi.org/10.18429/JACoW-SRF2021-SUPFDV007 http://cds.cern.ch/record/2846171 |
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