Z’ Signals from KK Dark Matter Sabine Riemann (DESY) LCWS, Stanford, March 18-22, 2005 Outline  Universal extra dimensions (UED)  KK dark matter?  Sensitivity.

Slides:



Advertisements
Similar presentations
Extra Dimensions of Space-Time String theory suffers conformal anomaly that makes theory inconsistent --> get rid of it Conformal anomaly ~ (D-26) for.
Advertisements

Dielectron Channel at CMS Cairo University November, Waled Emam Centre for Theoretical Physics at the British Univ. in Egypt.
WIMPs and superWIMPs Jonathan Feng UC Irvine MIT Particle Theory Seminar 17 March 2003.
Little Higgs Dark Matter and Its Implications at the LHC Chuan-Ren Chen (NTNU) XS 2014, 5/6/2014 In collaboration with H-C Tsai, M-C Lee, [hep-ph]
Significant effects of second KK particles on LKP dark matter physics
Cosmological Constraint on the Minimal Universal Extra Dimension Model Mitsuru Kakizaki (Bonn Univ. & ICRR, Univ. of Tokyo) Mitsuru Kakizaki (Bonn Univ.
Cosmological Constraint on the Minimal Universal Extra Dimension Model Mitsuru Kakizaki (Bonn University) Mitsuru Kakizaki (Bonn University) October 4,
Dark Matter from Universal Extra Dimensions Mitsuru Kakizaki (Bonn Univ. & ICRR, Univ. of Tokyo) 18 November, Bonn Univ. Collaborated with Shigeki.
Significant effects of second KK particles on LKP dark matter physics Mitsuru Kakizaki (Bonn Univ. & ICRR, Univ. of Tokyo) Mitsuru Kakizaki (Bonn Univ.
WIMPs and superWIMPs from Extra Dimensions Jonathan Feng UC Irvine Johns Hopkins Theory Seminar 31 January 2003.
Cosmological Constraint on the Minimal Universal Extra Dimension Model Mitsuru Kakizaki (Bonn Univ. & ICRR, Univ. of Tokyo) Mitsuru Kakizaki (Bonn Univ.
1 Discovering New Physics with the LHC Nadia Davidson Supervisor: Elisabetta Barberio EPP Nobel Prize for Physics in 2010:
Introduction to universal extra dimensions (UEDs) Mitsuru Kakizaki (ICRR, University of Tokyo) May 10, KEK Refs: Original idea: Appelquist, Cheng,
Significant effects of second KK particles on LKP dark matter physics Mitsuru Kakizaki (Bonn Univ. & ICRR, Univ. of Tokyo) 13 March, Bad Honnef.
Large enhancement of KK dark matter annihilation rate due to threshold singularity Mitsuru Kakizaki (ICRR, University of Tokyo) Dec. Stanford Univ.
The Complete Phase Diagram of Minimal Universal Extra Dimensions Jonathan Feng UC Irvine work in progress with Jose Ruiz Cembranos and Louis Strigari KITP,
Paris 22/4 UED Albert De Roeck (CERN) 1 Identifying Universal Extra Dimensions at CLIC  Minimal UED model  CLIC experimentation  UED signals & Measurements.
Significant effects of second KK particles on LKP dark matter physics Mitsuru Kakizaki (Bonn Univ. & ICRR, Univ. of Tokyo) Mitsuru Kakizaki (Bonn Univ.
Cosmological Constraint on the Minimal Universal Extra Dimension Model Mitsuru Kakizaki (Bonn University) Mitsuru Kakizaki (Bonn University) September.
Basics of Physics in Extra Dimensions. Motivation for extra dimensions Hierarchy problem –Vast expanse between the scales of weak interactions and gravitational.
Extra Dimensions with Many Inverse Femptobarns at the Tevatron Universal Extra Dimensions Warped Extra Dimensions – Beyond RS1 - SM in the bulk –Brane.
SUSY Dark Matter Collider – direct – indirect search bridge. Sabine Kraml Laboratoire de Physique Subatomique et de Cosmologie Grenoble, France ● 43. Rencontres.
 Collaboration with Prof. Sin Kyu Kang and Prof. We-Fu Chang arXiv: [hep-ph] submitted to JHEP.
Kaluza-Klein gluon production at the LHC
Center for theoretical Physics at BUE
1 EXTRA DIMENSIONS AT FUTURE HADRON COLLIDERS G.F. Giudice CERN.
Low scale gravity mediation in warped extra dimensions and collider phenomenology on sector hidden sector LCWS 06, March 10, Bangalore Nobuchika.
Takehiro Nabeshima University of Toyama ILC physics general meeting 9 jun Phenomenology at a linear collider in a radiative seesaw model from TeV.
Sreerup Raychaudhuri TIFR Extra Dimensions and Collider Physics Workshop on Synergy between High Energy and High Luminosity Frontiers Tata Institute of.
Wednesday, Apr. 23, 2003PHYS 5326, Spring 2003 Jae Yu 1 PHYS 5326 – Lecture #24 Wednesday, Apr. 23, 2003 Dr. Jae Yu Issues with SM picture Introduction.
Takaaki Nomura(Saitama univ) collaborators Joe Sato (Saitama univ) Nobuhito Maru (Chuo univ) Masato Yamanaka (ICRR) arXiv: (to be published on.
Masato Yamanaka (Saitama University) collaborators Shigeki Matsumoto Joe Sato Masato Senami arXiv: [hep-ph]Phys.Lett.B647: and Relic abundance.
Masato Yamanaka (Tokyo university, ICRR) Collaborators Shigeki Matsumoto Joe Sato Masato Senami PHYSICAL REVIEW D 80, (2009)
DARK MATTER CANDIDATES Cody Carr, Minh Nguyen December 9 th, 2014.
1 Summary talk for ILC Physics Yasuhiro Okada (KEK) November 12, 2004 ACFA LC7, Taipei.
1 Supersymmetry Yasuhiro Okada (KEK) January 14, 2005, at KEK.
1 THEORETICAL PREDICTIONS FOR COLLIDER SEARCHES “Big” and “little” hierarchy problems Supersymmetry Little Higgs Extra dimensions G.F. Giudice CERN.
Low scale supergravity mediation in brane world scenario and hidden sector phenomenology Phys.Rev.D74:055005,2006 ( arXiv: hep-ph/ ) ACFA07 in Beijing:
Effective Lagrangians and Physics Beyond the Standard Model S. Dawson TASI06 Lecture 5.
Randall Sundrum KK Graviton at CMS
Constraints on the Scale of New Physics Phenomena from the Combined LEP II  f f and γγ Measurements Dimitri Bourilkov University of Florida for the LEP.
Search for Extra Dimensions at ATLAS Ambreesh Gupta University of Chicago PASCOS 2003 T.I.F.R, Mumbai, 3-8 January 2003.
22 December 2006Masters Defense Texas A&M University1 Adam Aurisano In Collaboration with Richard Arnowitt, Bhaskar Dutta, Teruki Kamon, Nikolay Kolev*,
New Heavy Gauge Bosons at CMS Claudia-Elisabeth Wulz On behalf of the CMS Collaboration Institute of High Energy Physics Vienna Austrian Academy of Sciences.
Neutrino mass and DM direct detection Daijiro Suematsu (Kanazawa Univ.) Erice Sept., 2013 Based on the collaboration with S.Kashiwase PRD86 (2012)
Significant effects of second KK particles on LKP dark matter physics Collaborated with Mitsuru Kakizaki (ICRR) Mitsuru Kakizaki (ICRR) Shigeki Matsumoto.
Low scale gravity black holes at LHC Enikő Regős ( CERN )
Latest New Phenomena Results from Alexey Popov (IHEP, Protvino) For the DO Collaboration ITEP, Moscow
Nobuchika Okada The University of Alabama Miami 2015, Fort Lauderdale, Dec , GeV Higgs Boson mass from 5D gauge-Higgs unification In collaboration.
Masato Yamanaka (Saitama University) collaborators Shigeki Matsumoto Joe Sato Masato Senami Phys.Rev.D76:043528,2007Phys.Lett.B647: and Universal.
03/31/2006S. M. Lietti - UED Search at SPRACE 1 Universal Extra Dimensions Search at SPRACE S. M. Lietti DOSAR Workshop at U.T. Arlington.
Dirac neutrino dark matter G. Bélanger LAPTH- Annecy based on G. B, A.Pukhov, G. Servant CERN-PH-TH/
DIS2003 A.Tilquin Searches for Physics Beyond the Standard Model at LEP What is the Standard Model Why to go beyond and how Supersymmetry Higgs sector.
UED Observables at the LHC. UED Observables at the LHC? Level 1 Discovery Potential –4 leptons + missing energy –Neutral LKP escapes detection Level 2.
Tools for Xtra Dimensions GDR Bruxelles novembre Helenka Przysiezniak CNRS LAPP.
Collider Signals of Extra Dimension Scenarios
Kaluza-Klein Electroweak Dark matter Dong Woo Kang (SKKU) T. Flacke, DWK, K. C. Kong, G. M. Mohlabeng, S. C. Park arXiv:1503.xxxxx Exploring the Dark Sector.
Kaluza-Klein Electroweak Dark matter Dong Woo Kang (SKKU) T. Flacke, DWK, K. C. Kong, G. M. Mohlabeng, S. C. Park arXiv:1504.xxxxx Wonju Spring School.
RANDALL-SUNDRUM GRAVITON IDENTIFICATION IN DILEPTON AND DIPHOTON EVENTS WITH ATLAS V.A. Bednyakov JINR, LNP with A.A. Pankov, A.V. Tsytrinov ICTP Affiliated.
Excited Leptons at CLIC Orhan Çakır Ankara University with co-author A. Ozansoy with contributions from A. De Roeck CLIC Workshop CERN, October 2007.
Searching for in High Mass Dilepton Spectrum at CDF, Fermilab ADD model Drell-Yan production of a graviton of varying string scale M S = M Pl(4+n) [4]
The study of q q production at LHC in the l l channel and sensitivity to other models Michihisa Takeuchi ~~ LL ± ± (hep-ph/ ) Kyoto Univ. (YITP),
Unified Modes and Collider Experiments
Universal Extra Dimension models with right-handed neutrinos
Direct Detection of Vector Dark Matter
Gluon Contribution to Dark Matter Direct Detection
Masato Yamanaka (Saitama University)
Introduction to universal extra dimensions (UEDs)
Collider Signals of Large Extra Dimension
Presentation transcript:

Z’ Signals from KK Dark Matter Sabine Riemann (DESY) LCWS, Stanford, March 18-22, 2005 Outline  Universal extra dimensions (UED)  KK dark matter?  Sensitivity to UED KK 2 bosons  Results

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann Different scenarios  large ED: SM on a brane, gravity in the bulk,  TeV -1 sized ED with SM fields,  warped ED: SM fields on brane or in bulk, ‘curved’ ED.... Kaluza-Klein (KK) towers of propagated fields:  KK partners with identical spins and identical couplings  degenerate mass spectra R =compactification radius (unknown) Extra Dimensions

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann Appelquist, Cheng, Dobrescu, hep-ph/ ; Cheng, Matchev, Schmaltz hep-ph/ ; Cheng, Feng, Matchev hep-ph/ ALL SM particles propagate to the bulk  KK tower states for each SM particle Momentum conservation in higher dimensions  conservation of KK number n: 1  10, 2  11, 2  02,… Chiral fermions at zero KK mode  orbifold compact. on S 1 /Z 2 Universal Extra Dimensions (UED) 0 R S1/Z2S1/Z2 Boundary interaction breaks KK-number  KK parity: (-1) n is conserved (~ R-parity in SUSY)  lightest KK particle (LKP) is stable !! Dark Matter candidate  allowed: 2  00, 3  01,… 2R ≈ Z’ search

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann Minimal UED: Radiative Corrections Cheng, Matchev, Schmaltz, hep-ph/ ● mass degeneracy n/R only at tree level ● compactification  Lorentz invariance is lost  mass corrections due to kinetic terms  finite  ≠0 only for bosons  arise from interactions localized at fixed points  logarithmically divergent (finite part undetermined; assumption: boundary kinetic terms vanish at cutoff scale   Bulk correctionsBoundary (orbifold) corrections  = cutoff scale, ≈M n

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann Consequences of KK radiative corrections  Observation of  1 (LKP) as missing energy   2 can not decay to two level 1 fermions  (sin 2  W ) n becomes small with radiative corrections  B 2 ≈  2 ; W 2 (3) ≈ Z 2 (corresponds to Z’search)  KK number violating couplings are related to KK mass corr’s Cheng, Matchev, Schmaltz, hep-ph/ /R=500 GeV

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann KK level 2 gauge boson exchange in ee  ff  vertex corrections  corrections due to kinetic mixing  corrections due to mass mixing  couplings much smaller than SM couplings   2,Z 2  Q 0 Q 0 dominate KK 2 n=1  2, Z 2  f 0 f 0 couplings n=0 n=2

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann UED: KK level 2 Direct observation : 2 narrow peaks at √s=M(  2 ), M(Z 2 ) Indirect search: at √s <M( 2 ), M(Z 2 ) expect modification of hadronic and leptonic cross sections, R  eVR=50, √s=0.5 TeV ee  qq ee   ee  qq ee   ee  qq ee    0,Z 0 ;  2,Z 2  0,Z 0 ; Z 2  0,Z 0;  2

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann UED: KK level 2 1/R > √s for R=20 Sensitivities to KK level 2 gauge bosons (95% C.L.) (e + ) polarisation does not improve the sensitivity Excluded at 95% C.L.  2 < 2√s Z 2 < 2√s for R=20 DM:  1 < √s is excluded L int =1 ab -1, L=sys=0.1% P(e - )=0.8,P(e + )=0.6, P (e + )=(P(e-)=0.1%

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann UED: Z 2,  2 from ee  bb, cc Consider ee  bb, cc (√s = 0.5 TeV and 0.8 TeV, L int =1ab -1 ) Sensitivities: √s/2 < R -1 < √s Excluded at 95% C.L.  2 < √s Z 2 < √s for R≈20  1 < √s/2

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann Comparison with other new physics models ‘Usual’ Z’ search For √s= 1TeV, L int =1 ab -1, ee  hadrons, leptons [L=sys=0.1%, P(e - )=0.8, P(e + )=0.6, P (e + )=(P(e-)=0.1%]  ij =±1 (VV model) > 200 TeV (ee  hadrons)  > 240 TeV (ee  leptons) Contact Interaction: SSM: M Z’ > 16.4 TeV (95% C.L.)

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann UED vs. other new physics (e + e - ) Distinguish UED from other scenarios ~ not easy  detecting higher modes is the confirmation of extra dimensions  pair produced KK1  KK2 exchange  UED  resonance production of level 2 bosons gives similar limits on R as pairwise production of level 1 fermions;  UED KK or SUSY: spin angular distribution of leptons and missing energy (see previous speaker)

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann Summary  UED has an interesting phenomenolgy, can be tested at ILC  Radiative corrections  test of level 1 spectrum  MUED: 1 is a dark matter candidate  KK level 2 bosons are like Z’ bosons  Further studies are needed (resolution power …)  Sensitivity of ILC for level 2 KK bosons: ~2√s  ILC has a good chance for detection  LHC: sensitivity up to 1/R~1.5 TeV Cheng, Matchev, Schmaltz, hep-ph/  Existing limits: EW constraints Appelquist, Cheng, Dobrescu, hep-ph/ /R ≥ 250 GeV Cosmological bound: Servant, Tait hep-ph/  ~ 0.3, 1/R ≤ O(1) TeV

Z’Signals from KK Dark Matter LCWS, Stanford March 2005 Sabine Riemann Bounds on  Upper bounds on at given Compactification radius R