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Vortex dynamics and losses due to pinning: Dissipation from trapped magnetic flux in resonant superconducting radio-frequency cavities

We use a model of vortex dynamics and collective weak-pinning theory to study the residual dissipation due to trapped magnetic flux in a dirty superconductor. Using simple estimates, approximate analytical calculations, and numerical simulations, we make predictions and comparisons with experiments...

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Detalles Bibliográficos
Autores principales: Liarte, Danilo B., Hall, Daniel, Koufalis, Peter N., Miyazaki, Akira, Senanian, Alen, Liepe, Matthias, Sethna, James P.
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevApplied.10.054057
http://cds.cern.ch/record/2667522
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author Liarte, Danilo B.
Hall, Daniel
Koufalis, Peter N.
Miyazaki, Akira
Senanian, Alen
Liepe, Matthias
Sethna, James P.
author_facet Liarte, Danilo B.
Hall, Daniel
Koufalis, Peter N.
Miyazaki, Akira
Senanian, Alen
Liepe, Matthias
Sethna, James P.
author_sort Liarte, Danilo B.
collection CERN
description We use a model of vortex dynamics and collective weak-pinning theory to study the residual dissipation due to trapped magnetic flux in a dirty superconductor. Using simple estimates, approximate analytical calculations, and numerical simulations, we make predictions and comparisons with experiments performed in CERN and Cornell on resonant superconducting radio-frequency NbCu, doped-Nb and Nb$_3$Sn cavities. We invoke hysteretic losses originating in a rugged pinning potential landscape to explain the linear behavior of the sensitivity of the residual resistance to trapped magnetic flux as a function of the amplitude of the radio-frequency field. Our calculations also predict and describe the crossover from hysteretic-dominated to viscous-dominated regimes of dissipation. We propose simple formulas describing power losses and crossover behavior, which can be used to guide the tuning of material parameters to optimize cavity performance.
id cern-2667522
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
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spelling cern-26675222022-08-10T12:27:52Zdoi:10.1103/PhysRevApplied.10.054057http://cds.cern.ch/record/2667522engLiarte, Danilo B.Hall, DanielKoufalis, Peter N.Miyazaki, AkiraSenanian, AlenLiepe, MatthiasSethna, James P.Vortex dynamics and losses due to pinning: Dissipation from trapped magnetic flux in resonant superconducting radio-frequency cavitiesphysics.acc-phAccelerators and Storage Ringscond-mat.supr-conWe use a model of vortex dynamics and collective weak-pinning theory to study the residual dissipation due to trapped magnetic flux in a dirty superconductor. Using simple estimates, approximate analytical calculations, and numerical simulations, we make predictions and comparisons with experiments performed in CERN and Cornell on resonant superconducting radio-frequency NbCu, doped-Nb and Nb$_3$Sn cavities. We invoke hysteretic losses originating in a rugged pinning potential landscape to explain the linear behavior of the sensitivity of the residual resistance to trapped magnetic flux as a function of the amplitude of the radio-frequency field. Our calculations also predict and describe the crossover from hysteretic-dominated to viscous-dominated regimes of dissipation. We propose simple formulas describing power losses and crossover behavior, which can be used to guide the tuning of material parameters to optimize cavity performance.We use a model of vortex dynamics and collective weak pinning theory to study the residual dissipation due to trapped magnetic flux in a dirty superconductor. Using simple estimates, approximate analytical calculations, and numerical simulations, we make predictions and comparisons with experiments performed in CERN and Cornell on resonant superconducting radio-frequency NbCu, doped-Nb and Nb$_3$Sn cavities. We invoke hysteretic losses originating in a rugged pinning potential landscape to explain the linear behavior of the sensitivity of the residual resistance to trapped magnetic flux as a function of the amplitude of the radio-frequency field. Our calculations also predict and describe the crossover from hysteretic-dominated to viscous-dominated regimes of dissipation. We propose simple formulas describing power losses and crossover behavior, which can be used to guide the tuning of material parameters to optimize cavity performance.arXiv:1808.01293oai:cds.cern.ch:26675222018-08-03
spellingShingle physics.acc-ph
Accelerators and Storage Rings
cond-mat.supr-con
Liarte, Danilo B.
Hall, Daniel
Koufalis, Peter N.
Miyazaki, Akira
Senanian, Alen
Liepe, Matthias
Sethna, James P.
Vortex dynamics and losses due to pinning: Dissipation from trapped magnetic flux in resonant superconducting radio-frequency cavities
title Vortex dynamics and losses due to pinning: Dissipation from trapped magnetic flux in resonant superconducting radio-frequency cavities
title_full Vortex dynamics and losses due to pinning: Dissipation from trapped magnetic flux in resonant superconducting radio-frequency cavities
title_fullStr Vortex dynamics and losses due to pinning: Dissipation from trapped magnetic flux in resonant superconducting radio-frequency cavities
title_full_unstemmed Vortex dynamics and losses due to pinning: Dissipation from trapped magnetic flux in resonant superconducting radio-frequency cavities
title_short Vortex dynamics and losses due to pinning: Dissipation from trapped magnetic flux in resonant superconducting radio-frequency cavities
title_sort vortex dynamics and losses due to pinning: dissipation from trapped magnetic flux in resonant superconducting radio-frequency cavities
topic physics.acc-ph
Accelerators and Storage Rings
cond-mat.supr-con
url https://dx.doi.org/10.1103/PhysRevApplied.10.054057
http://cds.cern.ch/record/2667522
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