6/26/07 William Horowitz SQM 2007 1 pQCD vs. AdS/CFT Tested by Heavy Quark Energy Loss William Horowitz Columbia University Frankfurt Institute for Advanced.

Slides:



Advertisements
Similar presentations
W. A. Horowitz Quark Matter 2005 A Promising Solution to the Elliptic Quench Puzzle at RHIC William A. Horowitz Columbia University August 4-5, 2005.
Advertisements

21/05/07 William Horowitz CERN Heavy Ion Forum 1 Possible String Theoretic Deviations from pQCD in Heavy Quark Energy Loss at LHC William Horowitz Columbia.
M. Djordjevic 1 Open questions in heavy flavor physics at RHIC Magdalena Djordjevic The Ohio State University.
M. Djordjevic 1 Heavy quark energy loss puzzle at RHIC Magdalena Djordjevic The Ohio State University.
#: 1... and your jet energy loss calculation? What drives you? aka Perturbative jet energy loss mechanisms: Learning from RHIC, extrapolating to LHC Simon.
4/9/08 William Horowitz WWND Zero th Order Heavy Quark Photon/Gluon Bremsstrahlung William Horowitz Columbia University Frankfurt Institute for.
The EIC, Heavy Quarks, and QGP Phenomenology W. A. Horowitz University of Cape Town October 4, /22/20151EIC at the INT With many thanks to Brian.
Luan Cheng (Institute of Particle Physics, Huazhong Normal University) I. Introduction II. Interaction Potential with Flow III. Flow Effects on Light Quark.
Single & Dihadron Suppression at RHIC and LHC Xin-Nian Wang Lawrence Berkeley National Laboratory Last call for prediction for LHC, CERN, May 29-June 2,2007.
6/1/07 William Horowitz CERN Heavy Ion Forum 1 Possible String Theoretic Deviations from pQCD in Heavy Quark Energy Loss at LHC William Horowitz Columbia.
Jet quenching at RHIC and LHC from finite endpoint momentum strings Andrej Ficnar Columbia University Hard Probes 2013 November 5, 2013 Andrej Ficnar,
2/7/09 William Horowitz High-p T Physics at LHC1 Testing AdS/CFT at LHC William Horowitz The Ohio State University February 6, 2009 With many thanks to.
M. Djordjevic 1 Heavy quark energy loss in a dynamical QCD medium Magdalena Djordjevic The Ohio State University M. Djordjevic and U. Heinz, arXiv:
5/2/08 William Horowitz Yale-Columbia Fest Zero th Order Heavy Quark Photon/Gluon Bremsstrahlung William Horowitz Columbia University Frankfurt.
10/28/08 William Horowitz Nuclear Seminar, McGill University 1 LHC Predictions: Phys. Lett. B666:320, 2008 (arXiv: ) RHIC Predictions: J. Phys.
7/7/09 William Horowitz WHDG Brick and Comparing WHDG to ASW-SH William Horowitz The Ohio State University July 7, 2009 With many thanks to Brian Cole,
Langevin + Hydrodynamics Approach to Heavy Quark Diffusion in the QGP Yukinao Akamatsu Tetsuo Hatsuda Tetsufumi Hirano (Univ. of Tokyo) /05/09 Heavy.
1/31/07William Horowitz Yale-Columbia Fest Spring ‘07 1 pQCD vs. String Theory: LHC Heavy Flavors to Decide William Horowitz Columbia University January.
11/15/06 William Horowitz 1 LHC Predictions 1 from an extended theory 2 with Elastic, Inelastic, and Path Length Fluctuating Jet Energy Loss William Horowitz.
6/6/06William Horowitz Hard Probes Overcoming Fragility William Horowitz Columbia University June 14, 2006 With many thanks to Simon Wicks, Azfar.
10/26/07 William Horowitz AdS Strings Intersect with Nuclear Beams at Columbia 1 Probing AdS/CFT with Heavy Quarks William Horowitz Columbia University.
6/6/06William Horowitz RHIC & AGS Annual Users’ Meeting ‘06 1 Heavy Quark Energy Loss William Horowitz Columbia University June 6, 2006 With many thanks.
11/1/06William Horowitz 1 Jet Quenching at RHIC and the LHC William Horowitz Columbia University November 1, 2006 With many thanks to Simon Wicks, Azfar.
Jet energy loss at RHIC and LHC including collisional and radiative and geometric fluctuations Simon Wicks, QM2006 Work done with Miklos Gyulassy, William.
Heavy quark ”Energy loss" and ”Flow" in a QCD matter DongJo Kim, Jan Rak Jyväskylä University, Finland Lecture 16.
9/22/06William Horowitz 1 Surface or Volume Emission at RHIC: Is Jet Tomography Possible? William Horowitz Columbia University September 22, 2006 With.
8/31/07 William Horowitz Nuclear Theory/RIKEN Seminar 1 pQCD vs. AdS/CFT Tested by Heavy Quark Energy Loss William Horowitz Columbia University Frankfurt.
M. Djordjevic 1 Theoretical predictions of jet suppression: a systematic comparison with RHIC and LHC data Magdalena Djordjevic Institute of Physics Belgrade,
11/02/07 William Horowitz Heavy Quark Workshop, LBNL 1 Falsifying AdS/CFT Drag or pQCD Heavy Quark Energy Loss with A+A at RHIC and LHC William Horowitz.
1/22/08 William Horowitz Heavy Quark Physics in Nucleus-Nucleus Collisions, UCLA 1 Shock Treatment: Heavy Quark Drag in Novel AdS Geometries William Horowitz.
11/13/08 William Horowitz Nuclear Seminar, The Ohio State University 1 LHC Predictions: Phys. Lett. B666:320, 2008 (arXiv: ) RHIC Predictions:
Simon Wicks Columbia University Work done with William Horowitz, Magdalena Djordjevic and Miklos Gyulassy with input from Azfar Adil BNL Heavy Flavor Workshop,
Heavy Quark Energy Loss due to Three-body Scattering in a Quark- Gluon Plasma Wei Liu Texas A&M University  Introduction  Heavy quark scattering in QGP.
Hydrodynamic Flow from Fast Particles Jorge Casalderrey-Solana. E. V. Shuryak, D. Teaney SUNY- Stony Brook.
Elastic, Inelastic and Path Length Fluctuations in Jet Tomography Simon Wicks Hard Probes 2006 Work done with William Horowitz, Magdalena Djordjevic and.
QM04 1/12/04M. Djordjevic 1 Heavy quark energy loss-Applications to RHIC Magdalena Djordjevic and Miklos Gyulassy Columbia University The Ter-Mikayelian.
12/16/08 William Horowitz TECHQM 2 nd Workshop, LBNL 1 DGLV : M. Djordjevic and M. Gyulassy, Nucl.Phys.A733, 265 (2004) [nucl-th/ ] WHDG : S. Wicks,
M. Djordjevic 1 Hard probes at RHIC and LHC Magdalena Djordjevic Ohio State University.
Heavy Flavor Measurements at RHIC&LHC W. Xie (Purdue University, West Lafayette) W. Xie (Purdue University, West Lafayette) Open Heavy Flavor Workshop.
12/12/05William Horowitz Heavy Flavor Productions Workshop Role of Dynamic Geometry in Jet Tomography William Horowitz Columbia University December 12,
Andrej Ficnar Columbia University Hard Probes 2010, Eilat, Israel October 12, 2010 Nonconformal Holography of Heavy Quark Quenching Andrej Ficnar, Jorge.
2/9/08 William Horowitz Quark Matter Testing AdS/CFT Drag and pQCD Heavy Quark Energy Loss William Horowitz Columbia University Frankfurt Institute.
F. Dominguez, CM, A. Mueller, B. Xiao and B. Wu, arXiv:
Cyrille Marquet Columbia University
Shock Treatment: Heavy Quark Drag in Novel AdS Geometries
Andrej Ficnar Columbia University
Zeroth Order Heavy Quark Photon/Gluon Bremsstrahlung
William Horowitz Columbia University
W. A. Horowitz The Ohio State University February 23, 2010
William Horowitz Columbia University
Probing AdS/CFT with Heavy Quarks
William Horowitz Columbia University
William Horowitz Columbia University
Heavy Ion Physics and Electron Ion Colliders
Heavy Ion Physics at RHIC and LHC
Qualitative and Quantitative Energy Loss?
Qualitative Successes of AdS/CFT at RHIC
Heavy Quark and charm propagation in Quark-Gluon plasma
pQCD vs. AdS/CFT Tested by Heavy Quark Energy Loss
William Horowitz Columbia University
Identified Charm and Bottom Jets to Test pQCD vs. AdS/CFT Energy Loss
The LHC to Test pQCD vs. AdS/CFT Heavy Quark Energy Loss
Heavy Quark Energy Loss
William Horowitz Columbia University June 14, 2006
Qualitative and Quantitative Energy Loss?
Testing pQCD and AdS/CFT Energy Loss at RHIC and LHC
Understanding Energy Loss of Heavy Quarks
Energy Loss in the Hot QCD Brick I
Uncertainties and Consistency (?) in pQCD and AdS/CFT Jet Physics
Modified Fragmentation Function in Strong Interaction Matter
Presentation transcript:

6/26/07 William Horowitz SQM pQCD vs. AdS/CFT Tested by Heavy Quark Energy Loss William Horowitz Columbia University Frankfurt Institute for Advanced Studies (FIAS) June 26, 2007 With many thanks to Miklos Gyulassy, Simon Wicks, Jorge Casalderrey-Solana, and Urs Wiedemann. arXiv: (LHC predictions)

6/26/07 William Horowitz SQM pQCD Success at RHIC: –Consistency: R AA (  )~R AA (  ) –Null Control: R AA (  )~1 –GLV Prediction: Theory~Data for reasonable fixed L~5 fm and dN g /dy~dN  /dy Y. Akiba for the PHENIX collaboration, hep-ex/ (circa 2005)

6/26/07 William Horowitz SQM e - R AA too small M. Djorjevic, M. Gyulassy, R. Vogt, S. Wicks, Phys. Lett. B632 :81-86 (2006) wQGP not ruled out, but what if we try… D. Teaney, Phys. Rev. C68, (2003) Hydro  /s too small v 2 too large A. Drees, H. Feng, and J. Jia, Phys. Rev. C71 : (2005) (first by E. Shuryak, Phys. Rev. C66 : (2002)) Trouble for wQGP Picture

6/26/07 William Horowitz SQM Strong Coupling The supergravity double conjecture: QCD  SYM  IIB –IF super Yang-Mills (SYM) is not too different from QCD, & –IF Maldacena conjecture is true –Then a tool exists to calculate strongly- coupled QCD in SUGRA

6/26/07 William Horowitz SQM s strong =(3/4) s weak, similar to Lattice  /s AdS/CFT ~ 1/4  << 1 ~  /s pQCD e - R AA ~ ,  R AA ; e - R AA (  ) Mach wave-like structures T. Hirano and M. Gyulassy, Nucl. Phys. A69 :71-94 (2006) Qualitative AdS/CFT Successes: PHENIX, Phys. Rev. Lett. 98, (2007) J. J. Friess, S. S. Gubser, G. Michalogiorgakis, S. S. Pufu, Phys. Rev. D75 : (2007) J. P. Blaizot, E. Iancu, U. Kraemmer, A. Rebhan, hep-ph/ AdS/CFT

6/26/07 William Horowitz SQM AdS/CFT vs. pQCD with Jets Langevin model –Collisional energy loss for heavy quarks –Restricted to low p T –pQCD vs. AdS/CFT computation of D, the diffusion coefficient ASW model –Radiative energy loss model for all parton species –pQCD vs. AdS/CFT computation of –Debate over its predicted magnitude ST drag calculation –Drag coefficient for a massive quark moving through a strongly coupled SYM plasma at uniform T –not yet used to calculate observables: let’s do it!

6/26/07 William Horowitz SQM –Use LHC’s large p T reach and identification of c and b to distinguish R AA ~ (1-  (p T )) n(p T ), where p f = (1-  )p i (i.e.  = 1-p f /p i ) Asymptotic pQCD momentum loss: String theory drag momentum loss: –Independent of p T and strongly dependent on M q ! –T 2 dependence in exponent makes for a very sensitive probe –Expect:  pQCD 0 vs.  AdS indep of p T !! dR AA (p T )/dp T > 0 => pQCD; dR AA (p T )/dp T ST  rad   s L 2 log(p T /M q )/p T Looking for a Robust, Detectable Signal  ST  1 - Exp(-  L),  =    T 2 /2M q S. Gubser, Phys.Rev. D74 : (2006); C. Herzog et al. JHEP 0607:013,2006

6/26/07 William Horowitz SQM Model Inputs –AdS/CFT Drag: nontrivial mapping of QCD to SYM “Obvious”:  s =  SYM = const., T SYM = T QCD –D/2  T = 3 inspired:  s =.05 –pQCD/Hydro inspired:  s =.3 (D/2  T ~ 1) “Alternative”: = 5.5, T SYM = T QCD /3 1/4 Start loss at thermalization time  0 ; end loss at T c –WHDG convolved radiative and elastic energy loss  s =.3 –WHDG radiative energy loss (similar to ASW) = 40, 100 –Use realistic, diffuse medium with Bjorken expansion –PHOBOS (dN g /dy = 1750); KLN model of CGC (dN g /dy = 2900)

6/26/07 William Horowitz SQM –Large suppression leads to flattening –Use of realistic geometry and Bjorken expansion allows saturation below.2 –Significant rise in R AA (p T ) for pQCD Rad+El–Naïve expectations born out in full numerical calculation: dR AA (p T )/dp T > 0 => pQCD; dR AA (p T )/dp T ST LHC c, b R AA p T Dependence –LHC Prediction Zoo: What a Mess! –Let’s go through step by step WH, M. Gyulassy, nucl-th/

6/26/07 William Horowitz SQM A Cleaner Signal But what about the interplay between mass and momentum? –Take ratio of c to b R AA (p T ) pQCD: Mass effects die out with increasing p T –Ratio starts below 1, asymptotically approaches 1. Approach is slower for higher quenching ST: drag independent of p T, inversely proportional to mass. Simple analytic approx. of uniform medium gives R cb pQCD (p T ) ~ n b M c / n c M b ~ M c /M b ~.27 –Ratio starts below 1; independent of p T R cb pQCD (p T )  1 -  s n (p T ) L 2 log(M b /M c ) ( /p T )

6/26/07 William Horowitz SQM LHC R c AA (p T )/R b AA (p T ) Prediction Recall the Zoo: –Taking the ratio cancels most normalization differences seen previously –pQCD ratio asymptotically approaches 1, and more slowly so for increased quenching (until quenching saturates) –AdS/CFT ratio is flat and many times smaller than pQCD at only moderate p T WH, M. Gyulassy, nucl-th/

6/26/07 William Horowitz SQM But There’s a Catch –Speed limit estimate for applicability of AdS/CFT drag computation  <  crit = (1 + 2M q / 1/2 T) 2 ~ 4M q 2 /(  T 2 ) –Limited by M charm ~ 1.2 GeV –Ambiguous T for QGP smallest  crit for largest T = T(  0, x=y=0): (O) largest  crit for smallest T = T c : (|) Black D3 Brane D7 Probe Brane Q Induced horizon Appears  if  >  crit Trailing String “Brachistochrone” “z” x5x5

6/26/07 William Horowitz SQM LHC R c AA (p T )/R b AA (p T ) Prediction (with speed limits) –T(  0 ): (O), corrections unlikely for smaller momenta –T c : (|), corrections likely for higher momenta WH, M. Gyulassy, nucl-th/

6/26/07 William Horowitz SQM Identified c and b at RHIC –Index of power law production spectrum: y=0 RHIC LHC NOT slowly varying –No longer expect pQCD dR AA /dp T > 0 Large n requires corrections to naïve R cb ~ M c /M b

6/26/07 William Horowitz SQM RHIC c, b R AA p T Dependence Large increase in n (p T ) overcomes reduction in E-loss and makes pQCD dR AA /dp T < 0, as well WH, M. Gyulassy, to be published

6/26/07 William Horowitz SQM RHIC R cb Ratio Wider distribution of AdS/CFT curves due to large n : increased sensitivity to input parameters Advantage of RHIC: lower T => higher AdS speed limits pQCD AdS/CFT pQCD AdS/CFT WH, M. Gyulassy, to be published

6/26/07 William Horowitz SQM Conclusions Year 1 of LHC could show qualitative differences between energy loss mechanisms: –dR AA (p T )/dp T > 0 => pQCD; dR AA (p T )/dp T ST Ratio of charm to bottom R AA, R cb, will be an important observable –Ratio is: flat in ST; approaches 1 from below in pQCD partonic E-loss –A measurement of this ratio NOT going to 1 will be a clear sign of new physics: pQCD predicts ~ 2-3 times increase in R cb by 30 GeV— this can be observed in year 1 at LHC Measurement at RHIC will be possible –AdS/CFT calculations applicable to higher momenta than at LHC due to lower medium temperature

6/26/07 William Horowitz SQM Conclusions (cont’d) Additional c, b PID Goodies: –Adil Vitev in-medium fragmentation results in a much more rapid rise to 1 for R c AA /R b AA with the possibility of breaching 1 and asymptotically approaching 1 from above –Surface emission models (although already unlikely as per v 2 (p T ) data) predict flat in p T c, b R AA, with a ratio of 1 –Moderately suppressed radiative only energy loss shows a dip in the ratio at low p T ; convolved loss is monotonic. Caution: in this regime, approximations are violated –Mach cone may be due to radiated gluons: from pQCD the away-side dip should widen with increasing parton mass Need for p+A control

6/26/07 William Horowitz SQM Backups

6/26/07 William Horowitz SQM LHC  Predictions WH, S. Wicks, M. Gyulassy, M. Djordjevic, in preparation Our predictions show a significant increase in R AA as a function of p T This rise is robust over the range of predicted dN g /dy for the LHC that we used This should be compared to the flat in p T curves of AWS- based energy loss (next slide) We wish to understand the origin of this difference

6/26/07 William Horowitz SQM WH, S. Wicks, M. Gyulassy, M. Djordjevic, in preparation Asymptopia at the LHC Asymptotic pocket formulae:  E rad /E   3 Log(E/  2 L)/E  E el /E   2 Log((E T) 1/2 /m g )/E

6/26/07 William Horowitz SQM n(pT)n(pT)

6/26/07 William Horowitz SQM Langevin Model –Langevin equations (assumes  v ~ 1 to neglect radiative effects): –Relate drag coef. to diffusion coef.: –IIB Calculation: Use of Langevin requires relaxation time be large compared to the inverse temperature: AdS/CFT here

6/26/07 William Horowitz SQM But There’s a Catch (II) Limited experimental p T reach? ALICE Physics Performance Report, Vol. II

6/26/07 William Horowitz SQM Zoom In –Factor ~2-3 increase in ratio for pQCD –Possible distinction for Rad only vs. Rad+El at low-p T

6/26/07 William Horowitz SQM Regimes of Applicability String Regime –Large N c, constant ‘t Hooft coupling ( ) Small quantum corrections –Large ‘t Hooft coupling Small string vibration corrections –Only tractable case is both limits at once Classical supergravity (SUGRA) RHIC/LHC Regime –Mapping QCD N c to SYM is easy, but coupling is hard  S runs whereas  SYM does not:  SYM is something of an unknown constant Taking  SYM =  S =.3 (D/2  T ~ 1); D/2  T ~ 3 =>  SYM ~.05