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Measurement of the muon-neutrino charged-current single charged-pion cross-section on argon with the MicroBooNE detector

cam.depositDate2022-03-20
cam.restrictionthesis_access_embargoed
cam.supervisorUchida, Melissa
dc.contributor.authorSmith, Andrew
dc.date.accessioned2022-03-30T13:18:18Z
dc.date.available2022-03-30T13:18:18Z
dc.date.submitted2021-08-23
dc.date.updated2022-03-20T17:30:41Z
dc.description.abstractSeveral important questions remain open in the field of neutrino oscillation physics, including the possibility of CP-violation in the lepton sector, the ordering of the neutrino mass states and the possible existence of sterile neutrinos. At present, the ability to answer these questions is limited by uncertainties on neutrino-nucleus interaction cross-section models. Consequently, it is key that these uncertainties are constrained by precise cross-section measurements made using experimental data. The MicroBooNE experiment utilises a 90-tonne active mass Liquid Argon Time Projection Chamber to image neutrino interactions at the millimetre scale and is ideally suited to measure complex neutrino-argon interactions. This thesis presents a measurement of the muon-neutrino charged-current single charged pion (CC1π± ) cross-section on argon using data from MicroBooNE in the Fermilab Booster Neutrino Beam. The total flux-integrated forward-folded cross-section is found to be [22.4 ± 0.9 (stat.) ± 5.2 (syst.)] × 10 −41 cm 2, with an efficiency of [18.8 ± 1.3]% and is consistent with the prediction of the GENIE generator. Additionally, the world’s first measurement of the proton-exclusive CC1π ± cross-section is performed with a 300 MeV c−1 proton momentum threshold. Finally, the differential cross-section is extracted with respect to the muon and pion momenta and directions. The pion momentum measurement on argon is also the first to be made. To facilitate these measurements, the Pandora pattern recognition software is employed to identify and reconstruct particle trajectories in MicroBooNE data. A key stage of this process is the identification and removal of cosmic-rays that form the main background to all analyses of neutrino interactions. The approach presented in this thesis is capable of removing 46% of such backgrounds at the cost of only 1.7% of neutrino-induced activity.
dc.identifier.doi10.17863/CAM.82946
dc.identifier.urihttps://www.repository.cam.ac.uk/handle/1810/335513
dc.language.isoeng
dc.publisher.collegeGirton
dc.publisher.institutionUniversity of Cambridge
dc.rightsAttribution 4.0 International (CC BY 4.0)
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.subjectNeutrino
dc.subjectCross section
dc.subjectPhysics
dc.subjectMicroBooNE
dc.subjectCharged current single charged pion
dc.subjectCC1Pi
dc.titleMeasurement of the muon-neutrino charged-current single charged-pion cross-section on argon with the MicroBooNE detector
dc.typeThesis
dc.type.qualificationlevelDoctoral
dc.type.qualificationnameDoctor of Philosophy (PhD)
pubs.funder-project-idScience and Technology Facilities Council (1805208)
pubs.licence-display-nameApollo Repository Deposit Licence Agreement
pubs.licence-identifierapollo-deposit-licence-2-1
rioxxterms.licenseref.urihttps://creativecommons.org/licenses/by/4.0/
rioxxterms.typeThesis

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