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XXIWorkshoponNeutrinoTelescopes 1stOctober,2025,Padova,Italy NA61/SHINEexperiment forneutrinophysics YusukeKoshio,forNA61/SHINECollaboration (OkayamaUniversity,Japan)
8 TheNA61/SHINEExperiment NA61/SHINE* (SPS*north*area) LHC SPS Over&150&physicists&from&30&institutions&and&15&countries “The SPS Heavy Ion and Neutrino Experiment” <—&CERN&(main&site) Lake&Geneva Geneva&airport Jura&& mountains Y.Nagai 2ndworkshopforatmosphericneutrinoproductionintheMeVtoPeVrange ←
NeutrinoTelescopes2025,Padova,Italy Physicsprogram Multi-purposeexperiment •Neutrino:Hadronproductionmeasurements •Stronginteractionphysics •Searchforthecriticalpoint •Studytheonsetofdeconfinement •Studyopen-charmproductionmechanism •Cosmic-rayphysics •Hadronproductionmeasurementstoimproveair-showermodelpredictions •Study(anti-)deuteronproductionmechanismfortheAMSandGAPS •Nuclearfragmentationcrosssectionstounderstandcosmic-rayflux 3
NeutrinoTelescopes2025,Padova,Italy Howtoproduceneutrinobeam 4 B B p π+ µ+ π - p π+π+ µ+ νµ νµ ⇤ <latexit sha1_base64="V5OdF43uFMupWoBdNd3/dbfk9f4=">AAAB7nicdVDLSgMxFL3js9ZX1aWbYBFclZkq6LLoxoWLCvYB7VDuZDJtaCYzJBmhDP0INy4Ucev3uPNvTB9CfR0IHM45l3tzglRwbVz3w1laXlldWy9sFDe3tnd2S3v7TZ1kirIGTUSi2gFqJrhkDcONYO1UMYwDwVrB8Grit+6Z0jyRd2aUMj/GvuQRp2is1Ore2GiIvVLZq7hTEPcX+bLKMEe9V3rvhgnNYiYNFah1x3NT4+eoDKeCjYvdTLMU6RD7rGOpxJhpP5+eOybHVglJlCj7pCFTdXEix1jrURzYZIxmoH96E/Evr5OZ6MLPuUwzwySdLYoyQUxCJn8nIVeMGjGyBKni9lZCB6iQGttQcbGE/0mzWvFOK9Xbs3Ltcl5HAQ7hCE7Ag3OowTXUoQEUhvAAT/DspM6j8+K8zqJLznzmAL7BefsEDnOPYg==</latexit> K+ νe e+ π0 target Primary protons magnetichorn •Primaryinteractionsinthetarget( ) •Secondaryinteractionswithbeamlinematerials(hadrons+C/Be/Al/Ti/Fe/H2Oetc.) •Neutralhadrondecay( ) p+ Be/C →π±, K± p+ Be/C →V0+ X
NeutrinoTelescopes2025,Padova,Italy Historyofneutrinoprogram 1. 2006‒2010:p+Cat31GeV/cforT2K 2. 2015‒2018:variousinteractionsat30‒120GeV/cforNuMIandLBNF 3. 2022‒2025:variousinteractionsat30‒120GeV/cforT2K/HK,LBNF/DUNE 5 Twokindsoftargets Thintarget: Afew%ofnuclearinteractionlength tostudysingleinteractions Replicatarget:Samegeometryandmaterial asinrealneutrinobeamline T2K(90cm) NuMI(120cm)
NeutrinoTelescopes2025,Padova,Italy NA61/SHINEexperimentalfacility 6 Target •TPCsfortrackinganddE/dx •2dipolemagnetsupto1.5Tfield •Time-of-flightdetectorsplaceddownstream Largeacceptancespectrometerforchargedparticles Momentummeasurement withparticleidentification Analysis of p + T2K replica target data dE/dx [mip] 1 1.5 2 2.5 3 - π - µ - e - Kpd q<0 0.5−00.511.5 1 10 2 10 3 10 q>0 log(p/[GeV/c]) 0.5−0 0.5 1 1.5 + π + µ + e + K p d q>0 Figure 5.13: Energy loss distribution vs. log(p)for the data. The left panel shows the distribution of the negatively charged tracks and the right panel shows the distribution of the positively charged tracks. Energy loss parameterization is overlaid on top of the distributions. relation 5.7 by assuming that a single Gaussian is sufficient for describing the dE/dx distribution in a single phase space bin: f– i(dE/dx;µ–,‡– i)= A– i ‡– iÔ2fiexpA≠(dE/dx≠µ– i)2 2(‡– i)2B.(5.8) clusters n 0 50 100 150 200 250 0 10 20 30 40 50 60 70 80 3 10× (a) clusters n 0 50 100 150 200 250 dE/dx µ/σ 0.00 0.02 0.04 0.06 0.08 0.10 0.12 0.14 (b) Figure 5.14: Distribution of a number of clusters for selected tracks (a) and energy loss resolution with respect to the number of clusters. Resolution saturates around 0.03 for tracks with the large number of clusters. Clusters in the GTPC are not included since energy loss measurement is not performed in the GTPC. Tracks with the low number of clusters may create tails in the dE/dx distribution for a given phase space bin. The possibility of the bias is investigated in subsection 5.5.6. 118 Analysis of p + T2K replica target data dE/dx [mip] 1 1.5 2 2.5 3 - π - µ - e - Kpd q<0 0.5−00.511.5 1 10 2 10 3 10 q>0 log(p/[GeV/c]) 0.5−0 0.5 1 1.5 + π + µ + e + K p d q>0 Figure 5.13: Energy loss distribution vs. log(p)for the data. The left panel shows the distribution of the negatively charged tracks and the right panel shows the distribution of the positively charged tracks. Energy loss parameterization is overlaid on top of the distributions. relation 5.7 by assuming that a single Gaussian is sufficient for describing the dE/dx distribution in a single phase space bin: f– i(dE/dx;µ–,‡– i)= A– i ‡– iÔ2fiexpA≠(dE/dx≠µ– i)2 2(‡– i)2B.(5.8) clusters n 0 50 100 150 200 250 0 10 20 30 40 50 60 70 80 3 10× (a) clusters n 0 50 100 150 200 250 dE/dx µ/σ 0.00 0.02 0.04 0.06 0.08 0.10 0.12 0.14 (b) Figure 5.14: Distribution of a number of clusters for selected tracks (a) and energy loss resolution with respect to the number of clusters. Resolution saturates around 0.03 for tracks with the large number of clusters. Clusters in the GTPC are not included since energy loss measurement is not performed in the GTPC. Tracks with the low number of clusters may create tails in the dE/dx distribution for a given phase space bin. The possibility of the bias is investigated in subsection 5.5.6. 118 M.Pavin,doctoralthesis(2017) topview
ResultsinNA61/SHINE
NeutrinoTelescopes2025,Padova,Italy Phase1(2006‒2010) ForT2K 8 p p Z2 Z2 Z2 15#θ-bins#for#0#<#θ#<#380#mrad#(Z1-Z5)# 10#θ-bins#for#0#<#θ#<#300#mrad#(Z6) ( ) 4#θ-bins#for#0#<#θ#<#280#mrad#(Z1-Z5)# 2#θ-bins#for#0#<#θ#<#120#mrad#(Z6) ( ) 10#θ-bins#for#0#<#θ#<#380#mrad#(Z1-Z5)# 8#θ-bins#for#0#<#θ#<#260#mrad#(Z6) ( ) NA61/SHINE,Eur.Phys.J.C79,no2100(2019) p + T2K replica at 31 GeV/c data
NeutrinoTelescopes2025,Padova,Italy T2Kneutrinofluxuncertainty withNA61/SHINEdata(Phase1) 9 (GeV) ν E 1− 10 1 10 Fractional Error 0 0.1 0.2 0.3 µ νSK: Neutrino Mode, Hadron Interactions Proton Beam Profile & Off-axis Angle Horn Current & Field Horn & Target Alignment Material Modeling Number of Protons Replica 2010 Error Replica 2009 Error Thin Error , Arb. Norm. ν E×Φ µ νSK: Neutrino Mode, T2K Work in Progress Replica! 2009 Replica 2010 T2K,Eur.Phys.J.C83no9782(2023) Improveduncertaintydownto<5%
NeutrinoTelescopes2025,Padova,Italy Phase3(2022‒2025) Ongoingandplanned •T2Kreplicatargetrunat31GeV/c(2022) •18timesmoredatathanthepreviousT2Kdataset •Forwardchargedkaons(primaryuncertaintyathigh-energyregion) •K0sproduction(primaryuncertaintyofwrong-signνe) •Fermilabneutrinodata(2023‒2025) •Kaonsonthingraphitetargetsandprotonsonthintitanium(2023) •120GeV/cprotonsonLBNF/DUNEreplicatarget(2024,2025) 16
Futureprospects
NeutrinoTelescopes2025,Padova,Italy Low-Energy(<20GeV/c)beamlineproject Possiblephysicstargets 18 •Acceleratorneutrinoexperiments •studysecondaryhadronscatteringsnotcoveredbycurrentdata •Atmosphericneutrinoexperiments •studycosmic-rayprotonscatterings •Spallationneutronsourceneutrinoexperiments •measurementofhadronproductiononp+Hg •Muonexperiments •measurementofhadronproductiononp+Xat8GeV(X=C,W,orheavymaterials)
NeutrinoTelescopes2025,Padova,Italy ProspectfortheDUNEexperiment 18 We need to understand the broader energy range of neutrino flux compared to T2K.! -> Phase 2, 3, and future data will help for the reduction of the flux uncertainty! -> Aiming at unprecedented precision, below 2~3% uncertainty on flux prediction DUNE: Eur. Phys. J. C 80, 978 (2020) Laura Fields (NA61++/SHINE Workshop, 2022) Low-Energy(<20GeV/c)beamlineproject Improveneutrinofluxuncertainty 19 T2K/HKfluxuncertainty DUNEfluxuncertainty •Measurementsofsecondaryhadroninteractions bothforacceleratorandatmosphericneutrinos •Needtounderstandthebroadenergyrange •Aimingatbelow2~3%atlast SPSC-M-793:https://cds.cern.ch/record/2810696 Postfit Flux 𝜈𝜈-Mode •HK predicted flux uncertainty prefit (solid) and post IWCD fit (dashed) •Top: right-sign •Bottom: wrong-sign •Improvements to the prior uncertainty do improve the postfit significantly •Particularly notable in wrong-sign 10 Charlie Naseby Imperial College London 8 Aug 2025 Postfit Flux 𝜈𝜈-Mode •HK predicted flux uncertainty prefit (solid) and post IWCD fit (dashed) •Top: right-sign •Bottom: wrong-sign •Improvements to the prior uncertainty do improve the postfit significantly •Particularly notable in wrong-sign 10 Charlie Naseby Imperial College London 8 Aug 2025 Workinprogress Hyper-K(neutrino-focusingmode) νμ¯νμ Currentuncertainty WithLow-Edata
NeutrinoTelescopes2025,Padova,Italy Summary •NA61/SHINEhasprovidedcriticaldatatoimproveneutrinoflux predictionsbyprecisehadronproductionmeasurements •Additionaldatataking,includinglowenergyhadroninteractions,are ongoingforfurtherimprovement •Low-energybeamlineisnowconsideredandstudied.Itispromising forunderstandingthehadroninteractionsinvariousexperiments.We areaimingatthefirstbeamafterCERNʼsLong-Shutdown3(2028~) 20