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Understanding Neutrino Events at Liquid Argon Detectors
Shirley Li Collaborator: A. Friedland Precision Investigations of the Neutrino Sector, July 2019
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Measuring πΏ CP and MH ~1000 km 0.5β5 GeV π π π π
DUNE CDR Need to measure π( πΈ π π ) Shirley Li (SLAC) 2/31
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Detects charged particles above thresholds
DUNE detector 40 kton liquid argon TPC DUNE and NOvA Detects charged particles above thresholds Shirley Li (SLAC) 3/31
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The overarching question
How well can we measure neutrino energy? Simulated with GENIE+FLUKA Friedland & Li, 2018 Shirley Li (SLAC) 4/31
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No consensus in the field
Energy resolution from prior work Romeri, Fernandez-Martinez & Sorel, 2016 Shirley Li (SLAC) 5/31
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Two types of performance studies
Fast Monte Carlo type DUNE CDR See physical connection; not quantitative Shirley Li (SLAC) 6/31
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Two types of performance studies
Full propagation type Romeri, Fernandez-Martinez & Sorel, 2016 Complete; hide physical connection Shirley Li (SLAC) 7/31
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No consensus in the field
Energy resolution from prior work Romeri, Fernandez-Martinez & Sorel, 2016 Shirley Li (SLAC) 8/31
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Our goal: Understanding the physics of energy reconstruction
Shirley Li (SLAC)
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Calorimetric energy reconstruction
Signal: π π +π΄βπ+π Simulated with GENIE+FLUKA Friedland & Li, 2018 Separate π and hadronic system πΈ π : total collected charge -> energy πΈ β : total collected charge -> energy πΈ π = πΈ π + πΈ β or πΈ π =π( πΈ π , πΈ β ) How to characterize its performance? Shirley Li (SLAC) 10/31
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Calorimetric energy reconstruction
Signal: π π +π΄βπ+π Should work perfectly if πΈ π βionization dE dx β charge Problem arises if πΈ β β ionization missing energy Understanding missing energy is the key Shirley Li (SLAC) 11/31
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Hadronic system Prompt π vertex: π π +π΄βπ+π
Friedland & Li, 2018 GENIE default model 30 β 40% of neutrino energy, large fluctuations Shirley Li (SLAC) 12/31
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Multiple species contribute, large fluctuations
Hadronic system GENIE simulation Friedland & Li, 2018 Varied composition Multiple species contribute, large fluctuations Shirley Li (SLAC) 13/31
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Prompt neutrons are the biggest issue
Missing energy in πΈ β After primary vertex Friedland & Li, 2018 Prompt neutrons are the biggest issue Shirley Li (SLAC) 14/31
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Secondary particle propagation
Charged particles Friedland & Li, 2018 Many re-interactions Shirley Li (SLAC) 15/31
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Secondary particle propagation
Friedland & Li, 2018 Neutrons Simulated with FLUKA Neutron deposit ~ 50% of its energy in ionization Shirley Li (SLAC) 16/31
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Secondary particle propagation
Friedland & Li, 2018 Neutrons Simulated with GENIE+FLUKA Extremely challenging to reconstruct neutrons Shirley Li (SLAC) 17/31
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Secondary particle propagation
Friedland & Li, 2018 Neutrons Simulated with GENIE+FLUKA Extremely challenging to reconstruct neutrons Shirley Li (SLAC) 17/31
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Secondary particle propagation
Friedland & Li, 2018 Neutrons Simulated with GENIE+FLUKA Extremely challenging to reconstruct neutrons Shirley Li (SLAC) 17/31
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After full propagation
Missing energy in πΈ β Recombination: Nuclear breakup: π+40Arβ3π+π Energy -> nuclear binding energy Thresholds Neutrons After full propagation charge β ππΈ ππ₯ Friedland & Li, 2018 Shirley Li (SLAC) 18/31
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Missing energy in πΈ β Reducible vs. irreducible
Friedland & Li, 2018 Reducible vs. irreducible Reducible: threshold, rec Irreducible: nucl, π, neutron Irreducible missing energy has to be simulated correctly Shirley Li (SLAC) 19/31
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Energy reconstruction results
Friedland & Li, 2018 CDR th: method as it is Charge: collect all charges with no thresh. Best rec: no thresh., correct for recombination Shirley Li (SLAC) 20/31
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Two types of performance studies
Shirley Li (SLAC)
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Two types of performance studies
Full propagation Fast Monte Carlo DUNE CDR Romeri, Fernandez-Martinez & Sorel, 2016 Shirley Li (SLAC) 22/31
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Protons Energy distribution 23/31 Friedland & Li, in prep
Shirley Li (SLAC) 23/31
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Protons Energy distribution 24/31 Friedland & Li, in prep
Shirley Li (SLAC) 24/31
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Large missing energy fraction
Protons Friedland & Li, in prep Visible energy Large missing energy fraction Shirley Li (SLAC) 25/31
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Neutron-created charges are important
Protons Friedland & Li, in prep Energy resolution Neutron-created charges are important Shirley Li (SLAC) 26/31
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Charged pions Friedland & Li, in prep Shirley Li (SLAC) 27/31
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Neutrons Friedland & Li, in prep Shirley Li (SLAC) 28/31
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Friedland & Li, 2018 Shirley Li (SLAC) 29/31
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Conclusions Basic performance of liquid argon were not understood
We understand missing energy of neutrino events: neutrons, nuclear breakup, recombination Improve reconstruction strategy Details in arXiv: , PRD 2019 Test beam data will be crucial for simulation validation Shirley Li (SLAC) 30/31
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Outlook A framework to evaluate neutrino-nucleus cross section uncertainty impact on oscillations Full propagation studies guarantee no missing physics fastMC type studies need full, correct inputs Easy to see physics connections Shirley Li (SLAC) 31/31
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Backup
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Bi-probability plot
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Comparisons to other work
Friedland & Li, 2018 Romeri, Fernandez-Martinez & Sorel, 2016 Further studies warranted Shirley Li (SLAC)
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