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SUSY @ the LHC Jet & MET Searches

SUSY @ the LHC Jet & MET Searches. Adam Avakian. PY898 - Special Topics in LHC Physics 3/23/2009. Overview. SUSY summary Production and Decay Modes Dijet search @ CMS. The Standard Model. L = L gauge + L matter + L Yukawa + L higgs 19 parameters total (masses, couplings, etc.)

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SUSY @ the LHC Jet & MET Searches

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  1. SUSY @ the LHCJet & MET Searches Adam Avakian PY898 - Special Topics in LHC Physics 3/23/2009

  2. Overview • SUSY summary • Production and Decay Modes • Dijet search @ CMS

  3. The Standard Model • L = Lgauge + Lmatter + LYukawa + Lhiggs • 19 parameters total (masses, couplings, etc.) • Describes nearly all accelerator data • Still leaves plenty of mysteries

  4. Parameters of the Standard Model Symbol Description Valueme Electron mass 511 keVmμ Muon mass 106 MeVmτ Tauon mass 1.78 GeVmu Up quark mass 1.9 MeVmd Down quark mass 4.4 MeVms Strange quark mass 87 MeVmc Charm quark mass 1.32 GeVmb Bottom quark mass 4.24 GeVmt Top quark mass 172.7 GeVθ12 CKM 12-mixing angle 0.229θ23 CKM 23-mixing angle 0.042θ13 CKM 13-mixing angle 0.004δ CKM CP-violating Phase 0.995g1 U(1) gauge coupling 0.357g2 SU(2) gauge coupling 0.652g3 SU(3) gauge coupling 1.221θQCD QCD Vacuum Angle ~0μ Higgs quadratic coupling Unknownλ Higgs self-coupling strength Unknown

  5. What’s wrong with the Standard Model? • It fails to explain: • Neutrino masses and mixing angles • Baryogenesis • Dark Matter • Dark Energy

  6. SUSY (SUperSYmmetry) • “Standard way beyond the Standard Model” - Altarelli & Feruglio • Spacetime symmetry (“square root” of a translation) • Stable theory from Mweak (103 GeV) to MGUT (1016 GeV) • New “superpartner” particles • MSSM (Minimal Supersymmetric SM) is the simplest SUSY extension to SM

  7. MSSM (Minimal Supersymmetric SM) • Construct Lagrangian that changes only by total derivative under SUSY (action is invariant) • Add all “soft SUSY breaking” terms • Same physics at UV, symm. broken in IR • Minimal extension has 124 parameters instead of 19 now!

  8. More SUSY models • mSUGRA (minimal SUperGRAvity) • 5 basic parameters (m0, m1/2, A0, tan, sign()) determine phenomenology at LHC scale • GMSB (Gauge-Mediated Symmetry Breaking) • AMSB (Anomaly-Mediated Symmetry Breaking) • etc.

  9. Mass Spectra under mSUGRA Note that all scalar masses converge and all spin 1/2 masses converge

  10. Superpartners • Each SM particle has a superpartner • New conserved charge/quantum number • Naming conventions for “sparticles”: • Fermions: prepend with “s”, e.g. squark • Bosons: add “-ino” suffix, e.g. gluino •  • Spin = Spin § 1/2

  11. List of sparticles

  12. Where are the sparticles? • Produced at higher energy scales than previous colliders have achieved • Lightest Supersymmetric Particle (LSP) is stable and must be weakly interacting • mSUGRA: bino/wino/higgsino/gravitino? • GMBS: gravitino • AMSB: wino • It would be a strong candidate for Dark Matter WIMP

  13. LSP (Lightest Supersymmetric Particle) • If LSP is weakly interacting, how can we produce and observe such particles? - Indirectly! • Higher energy sparticles need not be weakly interacting • They can be produced in sparticle/anti-sparticle pairs and decay to LSP • LSP is observed indirectly as an MET signature

  14. SUSY Events • We always expect MET from LSPs • The other particles produced in the sparticle decays may hadrons, leptons, etc. • Events generally classified based on the number of leptons produced

  15. SUSY Candidate Event M. Spiropulu [Eur. Phys. J. C (2009) 59: 445–462]

  16. Gluino Pair Production

  17. Squark Pair Production

  18. Squark-Gluino Associated Production

  19. Sparticle Production Cross-Sections and dominate SUSY signatures at LHC if 1 TeV

  20. Sparticle Production LHC Tevatron

  21. Gluino Decay Modes

  22. Squark Decay Modes

  23. Gluino Decays

  24. Particle Cascade Decays Ultimately, we expect something more like this Run MC simulations (ISAJET, PYTHIA) for multiple points in parameter space and try to match the LHC data

  25. Sample LHC SUSY Event Source: Baer

  26. Meff = MET + E(jet1) + E(jet2) + … + E(jetn) Rough Estimate of squark/gluino masses from Meff ATLAS TDR (F. Paige)

  27. Missing MET & HT distributions M. Spiropulu [Eur. Phys. J. C (2009) 59: 445–462]

  28. Dijet Event Search @ CMS • Works best in parameter space squarks have large branching decay to LSP

  29. Dijet Event Process • 2 jets + MET • Search for events with exactly two jets above certain threshold • Require minimum MET

  30. Dijet Background • QCD dijet events (MET due to mismeasurement, cracks, etc.) • Z + Jet (Z)

  31. Dijet Event Preselection Cuts

  32. Dijet Event -  cut  < 2/3 cuts out almost the entire QCD background CMS Collaboration [CMS PAS SUS-08-005]

  33. New variables for cuts: , T

  34. Dijet Event Search CMS Collaboration [CMS PAS SUS-08-005]

  35. The additional cuts • Meff > 500 GeV •  < 2/3 •  or T > 0.55

  36. Dijet Event Search CMS Collaboration [CMS PAS SUS-08-005]

  37. Prospects for the LHC • Center-of-mass energy = 14 TeV • Should be able to produce sparticles at a rate high enough to determine signal over background • We may see sparticles for the first time!

  38. LHC Reach vs. earlier experiments Baer, Belyaev, Krupovnickas, Tata: JHEP 0402, 007 (2004)

  39. Reach of LHC at 100-1 fb Baer, Balasz, Belyaev, Krupovnickas, Tata: JHEP 0306, 054 (2003)

  40. Reach of CMS for various Integrated Luminosities We’re maybe just a couple of years from seeing evidence of SUSY!

  41. Conclusion • If SUSY exists and squarks and gluinos have a mass under 3 TeV, then we should be able to see evidence within of few years of taking data at the LHC • If they have a mass of about 1 TeV, then we should see them much sooner, possibly in the dijet signature

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