Search for a low-energy excess of electron neutrinos in MicroBooNE

<p>The Micro Booster Neutrino Experiment (MicroBooNE) is a Liquid Argon Time Projection Chamber (LArTPC) designed for short-baseline neutrino physics at the Fermi National Accelerator Laboratory. The main physics goal of MicroBooNE is to address the low-energy excess of electron-like events ob...

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Main Author: Soleti, S
Other Authors: Guenette, R
Format: Thesis
Language:English
Published: 2019
Subjects:
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author Soleti, S
author2 Guenette, R
author_facet Guenette, R
Soleti, S
author_sort Soleti, S
collection OXFORD
description <p>The Micro Booster Neutrino Experiment (MicroBooNE) is a Liquid Argon Time Projection Chamber (LArTPC) designed for short-baseline neutrino physics at the Fermi National Accelerator Laboratory. The main physics goal of MicroBooNE is to address the low-energy excess of electron-like events observed by the MiniBooNE experiment and, if confirmed, clarify its nature. The MiniBooNE experiment is a Cherenkov detector and this technology does not allow to distinguish between electrons and single photons in the final state. LArTPC detectors, instead, offer excellent granularity and powerful separation between electrons and photons. For this reason, they represent an ideal technology for the detection of electron neutrino interactions. This thesis presents the first fully-automated electron neutrino selection in a LArTPC. The selection looks for charged-current electron neutrino interactions with no pions and at least one proton in the final state. It is applied on a sub-sample of the data acquired by the detector in the Booster Neutrino Beam, corresponding to 4.34 x 10<sup>19</sup> protons-on-target. A validation of the analysis is performed on two orthogonal side-bands, enriched with neutral-current and charged-current muon neutrino interactions, respectively. The uncertainties on the neutrino cross sections, flux, and detector simulation are evaluated. The MicroBooNE detector is placed off-axis with the Neutrinos at the Main Injector (NuMI) beam. An independent dataset of events acquired by triggering on the NuMI beam is employed to measure the significance of the detection of electron neutrinos in the beam using the selection presented here. The sensitivity of the MicroBooNE experiment to the MiniBooNE low-energy excess of electron-like events is evaluated. The efficiency and background-rejection power necessary to achieve 5σ sensitivity are also quantified.</p>
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spelling oxford-uuid:b8f89e19-5c7c-433b-81bf-47271d94da9d2022-03-27T04:59:44ZSearch for a low-energy excess of electron neutrinos in MicroBooNEThesishttp://purl.org/coar/resource_type/c_db06uuid:b8f89e19-5c7c-433b-81bf-47271d94da9dParticle physicsNeutrino physicsEnglishORA Deposit2019Soleti, SGuenette, RWeber, A<p>The Micro Booster Neutrino Experiment (MicroBooNE) is a Liquid Argon Time Projection Chamber (LArTPC) designed for short-baseline neutrino physics at the Fermi National Accelerator Laboratory. The main physics goal of MicroBooNE is to address the low-energy excess of electron-like events observed by the MiniBooNE experiment and, if confirmed, clarify its nature. The MiniBooNE experiment is a Cherenkov detector and this technology does not allow to distinguish between electrons and single photons in the final state. LArTPC detectors, instead, offer excellent granularity and powerful separation between electrons and photons. For this reason, they represent an ideal technology for the detection of electron neutrino interactions. This thesis presents the first fully-automated electron neutrino selection in a LArTPC. The selection looks for charged-current electron neutrino interactions with no pions and at least one proton in the final state. It is applied on a sub-sample of the data acquired by the detector in the Booster Neutrino Beam, corresponding to 4.34 x 10<sup>19</sup> protons-on-target. A validation of the analysis is performed on two orthogonal side-bands, enriched with neutral-current and charged-current muon neutrino interactions, respectively. The uncertainties on the neutrino cross sections, flux, and detector simulation are evaluated. The MicroBooNE detector is placed off-axis with the Neutrinos at the Main Injector (NuMI) beam. An independent dataset of events acquired by triggering on the NuMI beam is employed to measure the significance of the detection of electron neutrinos in the beam using the selection presented here. The sensitivity of the MicroBooNE experiment to the MiniBooNE low-energy excess of electron-like events is evaluated. The efficiency and background-rejection power necessary to achieve 5σ sensitivity are also quantified.</p>
spellingShingle Particle physics
Neutrino physics
Soleti, S
Search for a low-energy excess of electron neutrinos in MicroBooNE
title Search for a low-energy excess of electron neutrinos in MicroBooNE
title_full Search for a low-energy excess of electron neutrinos in MicroBooNE
title_fullStr Search for a low-energy excess of electron neutrinos in MicroBooNE
title_full_unstemmed Search for a low-energy excess of electron neutrinos in MicroBooNE
title_short Search for a low-energy excess of electron neutrinos in MicroBooNE
title_sort search for a low energy excess of electron neutrinos in microboone
topic Particle physics
Neutrino physics
work_keys_str_mv AT soletis searchforalowenergyexcessofelectronneutrinosinmicroboone