First Experimental Characterization of Plasma Parameters and Carbon Decontamination Rates in a Microwave Resonator Used in Particle Accelerators

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Hauptverfasser: Cheney, Camille, Abi-abboud, Gabriel, Béchu, Stéphane, Bès, Alexandre, Bonny, Laurent, Gerardin, Thibaut, Mercier, Bruno, Mistretta, Eric, Yemane, Jonathan, Longuevergne, David
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Veröffentlicht: 2026
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author Cheney, Camille
Abi-abboud, Gabriel
Béchu, Stéphane
Bès, Alexandre
Bonny, Laurent
Gerardin, Thibaut
Mercier, Bruno
Mistretta, Eric
Yemane, Jonathan
Longuevergne, David
author_facet Cheney, Camille
Abi-abboud, Gabriel
Béchu, Stéphane
Bès, Alexandre
Bonny, Laurent
Gerardin, Thibaut
Mercier, Bruno
Mistretta, Eric
Yemane, Jonathan
Longuevergne, David
contents In-situ plasma processing of superconducting radio frequency (SRF) cavities is a performance recovery technique used to mitigate the field emission limiting phenomenon. It has been proved very effective at major particle accelerator facilities such as SNS, CEBAF, FRIB, FNAL and C-ADS. This technique is based on the ignition of a noble-gas/oxygen plasma inside the cavity over several hours to remove hydrocarbon-based contamination, responsible for the parasitic field emission degradation observed after several years of operation. Despite a large experimental R\&D effort from the community, plasma parameters and cleaning rates under various experimental conditions have never been directly evaluated. In this study, plasma parameters were measured using a Langmuir probe and cleaning rates thanks to a quartz crystal microbalance (QCM) coated with an amorphous carbon film to simulate a carbon-based contamination. In this article, the main results from a large parameter space are discussed along with guidelines for improving the plasma processing effectiveness in SRF cavities. The encountered technical challenges are also discussed, as the SRF cavity is by design not intended to be a plasma reactor.
format Preprint
id arxiv_https___arxiv_org_abs_2603_04052
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle First Experimental Characterization of Plasma Parameters and Carbon Decontamination Rates in a Microwave Resonator Used in Particle Accelerators
Cheney, Camille
Abi-abboud, Gabriel
Béchu, Stéphane
Bès, Alexandre
Bonny, Laurent
Gerardin, Thibaut
Mercier, Bruno
Mistretta, Eric
Yemane, Jonathan
Longuevergne, David
Accelerator Physics
Plasma Physics
In-situ plasma processing of superconducting radio frequency (SRF) cavities is a performance recovery technique used to mitigate the field emission limiting phenomenon. It has been proved very effective at major particle accelerator facilities such as SNS, CEBAF, FRIB, FNAL and C-ADS. This technique is based on the ignition of a noble-gas/oxygen plasma inside the cavity over several hours to remove hydrocarbon-based contamination, responsible for the parasitic field emission degradation observed after several years of operation. Despite a large experimental R\&D effort from the community, plasma parameters and cleaning rates under various experimental conditions have never been directly evaluated. In this study, plasma parameters were measured using a Langmuir probe and cleaning rates thanks to a quartz crystal microbalance (QCM) coated with an amorphous carbon film to simulate a carbon-based contamination. In this article, the main results from a large parameter space are discussed along with guidelines for improving the plasma processing effectiveness in SRF cavities. The encountered technical challenges are also discussed, as the SRF cavity is by design not intended to be a plasma reactor.
title First Experimental Characterization of Plasma Parameters and Carbon Decontamination Rates in a Microwave Resonator Used in Particle Accelerators
topic Accelerator Physics
Plasma Physics
url https://arxiv.org/abs/2603.04052