GPL Lightning Group Florida Institute of Technology Dept. of Physics and Space Sciences
H. Kalakhety , M.Hohlmann Department of Physics and Space Sciences Florida Institute of Technology
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Transcript of H. Kalakhety , M.Hohlmann Department of Physics and Space Sciences Florida Institute of Technology
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Search for a Z′ boson in the Search for a Z′ boson in the
dimuon channel in p-p collisions at dimuon channel in p-p collisions at
√s = 7TeV with CMS experiment at √s = 7TeV with CMS experiment at
the Large Hadron Colliderthe Large Hadron Collider
H. Kalakhety, M.HohlmannDepartment of Physics and Space Sciences
Florida Institute of TechnologyMelbourne, FL
March 11, 2011 FAS March Meeting, FL.Tech – H.Kalakhety 1
75 th Annual Meeting , March 11-12, 2011
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OutlineOutline
• LHC and CMS Detector
• Standard Model
• Z′ boson
• Physics analysis of 40 pb-1 data
• Summary
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Large Hadron Collider(LHC )Large Hadron Collider(LHC )
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- World’s Largest and highest energy particle accelerator - Built at CERN(European Center for Nuclear Physics).- 27 km long, 50-175 m underground.
LHC tunnel
Six Detectors:
- ATLAS: A Toroidal LHC ApparatuS - ALICE: A Large Ion Collider Experiment - CMS: Compact Muon Solenoid - LHCb: Large Hadron Collider beauty - LHCf: Large Hadron Collider forward - TOTEM: Total Elastic and diffractive cross section Measurements
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Compact Muon Solenoid(CMS)Compact Muon Solenoid(CMS)
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Compact: Compact in sizeMuon: Special focus on precise measurement of muonsSolenoid: Super conducting Magnet
Goal:- To explore physics at TeV scale- To discover Higgs boson- To look for evidence of physics beyond standard model such as Super Symmetry (SUSY) and extra dimensions.
- To study aspects of heavy ion collisions
Detector:- Designed as general - purpose detector capable of studying many aspects of p-p collision at 14 TeV CM energy.- Contains subsystems to measure energy and momentum of photons, electrons , muons and other products of collisions.
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Particle Detection in CMSParticle Detection in CMS
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Standard Model and Standard Model and Elementary ParticlesElementary Particles
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• Current knowledge of fundamental particles and their interaction.• Theory of strong interactions, unified theory of electromagnetic and weak interactions .• SM is a gauge theory with symmetry group SU(3) X SU(2) X U(1).
Elementary Particles:Fermions: Leptons, quarks (Spin ½)Bosons: Gauge Bosons (Spin 1)
Force Carriers: photon, gluons(8) W+,W-, Z0 ,H H: Higgs boson(not discovered yet)
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Proposed heavy boson(Z′)Proposed heavy boson(Z′)
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• Many proposed models of new physics includes particles that shows up as resonance in dimuon invariant mass spectrum. • An extended gauge model predicts a neutral and heavy gauge boson, Z′.
•Sequential Standard Model(SSM) Z′SSM: Same coupling with fermions as in SM Z.• U(1)Z: new force carrier of an additional U(1) gauge symmetry SU(3)C X SU(2)W X U(1)Y X U(1)Z .
• No theoretical prediction of Z′ mass
• Current mass limit is > 1071 GeV/c2 at Collider detector at Fermilab (CDF) (arXiv:1101.4578v1[hep-ex] Jan 24, 2011)
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Z′ searchZ′ search
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qDirect search: - Looking for high-mass dilepton resonances
- Quark- antiquark annihilation and decay to opposite charge muons
μ+
μ-
pp → Z′ →l+ l- + X, where l = e, μ
- LHC is the first opportunity to search for Z' in a high-mass (TeV/c2) range.
- Z' → µ+ µ- is one of the most promising channel for its discovery (clear signature, low background).
q
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Physics analysis of 40pbPhysics analysis of 40pb-1-1datadataat √s = 7 TeVat √s = 7 TeV
• Run/Event Selection: - Good runs of Muon Physics(official)- 40 pb-1 of data (2010). • Luminosity: The number of particles per unit area per unit time.• Integrated Luminosity ( L dt ): Measure of total data collected in an
accelerator
N = L dt (No of events = Cross section x Integrated luminosity)
• 1 pb-1 of data will give 1 event for a process that has cross section of
1pb.• Example : Z0→μ+μ-
N = 1998931, = 1631 pb
L dt = N / = 1998931/1631 = 1225.58 pb-1
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Data / BackgroundsData / Backgrounds
• The biggest background in our search is Drell-Yan.• ttbar : 11% of Drell-Yan above 120GeV• ttbarlike: 5%(tW, WW, WZ, ZZ, Z→+-)• Sources with misidentified muons:1%(W+jets, QCD)• Dimuons from cosmic ray muons: removed by cut
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MC histogramMC histogram
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Mμμ(GeV/c2)
Drell -Yan ttbar
Mμμ(GeV/c2)
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Dimuon Mass Spectrum(1)Dimuon Mass Spectrum(1)
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Dimuon Mass Spectrum (2)Dimuon Mass Spectrum (2)
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Current lower Z′ mass limit Current lower Z′ mass limit
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Recent LHC result: With 40 pb-1 of data at LHC at √s = 7TeVAt 95% C.L: Z′SSM = 1027 GeV/c2 (dimuons) Z′SSM = 1140 GeV/c2 (combined dileptons)
Ref: AN2010_317_v9 2010/12/25
Dimuons
• As there is no resonance in dimuon mass spectrum we set limit on Z′mass .
• There are different methods of limit setting. The limit reported here for LHC result are using Bayesian method.
Recent CDF result: With 4.6 fb-1 of data at CDF at √s = 1.96 TeVAt 95% C.L: Z′SSM = 1071GeV/c2 ( dimuons)
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SummarySummary
• The data and MC samples in the dimuon mass spectra are consistent.
• We do not find evidence of resonance decaying to dimuons in the analyzed 40 pb-1 of data.
• The limit for lower Z′ mass at 95% C.L, for dimuons is 1027 GeV/c2 where as for combined dileptons is 1140 GeV/c2.
• Hope to see Z′ bump in more data (~fb-1) in 2011.
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Back- up
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A CMS collision event displayA CMS collision event display
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An event display of two opposite sign muons in pp collision at √s = 7 TeV
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DatasetsDatasets
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MC histogram(1)MC histogram(1)
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WW
Mμμ(GeV/c2)
WZ
Mμμ(GeV/c2)
Mμμ(GeV/c2) Mμμ(GeV/c2)
ZZ tW
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MC histogram(2)MC histogram(2)
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QCD
Mμμ(GeV/c2)
WJets
Mμμ(GeV/c2)
W→μ Z’
Mμμ(GeV/c2)Mμμ(GeV/c2)