Two particle correlations: from RHIC to LHC Francesco Noferini Bologna University INFN – sez. Bologna ALICE-TOF Tuesday, May 16th Villasimius (Italy) HOT.

Slides:



Advertisements
Similar presentations
Review on initial conditions that allow for a successful description of the RHIC data on spectra, V2, (as)HBT, etc… Tom Humanic Ohio State University WPCF.
Advertisements

1 Jet Structure of Baryons and Mesons in Nuclear Collisions l Why jets in nuclear collisions? l Initial state l What happens in the nuclear medium? l.
Probing Properties of the QCD Medium via Heavy Quark Induced Hadron Correlations Huan Zhong Huang Department of Physics and Astronomy University of California.
References to Study the New Matter. Study QGP in different Centrality Most Central events (highest multiplicity), e.g. top 5% central, i.e. 5% of the.
Relativistic Heavy-Ion Collisions: Recent Results from RHIC David Hardtke LBNL.
High-p T spectra and correlations from Cu+Cu and Au+Au collisions in STAR Marco van Leeuwen, LBNL for the STAR collaboration.
Ali Hanks - APS Direct measurement of fragmentation photons in p+p collisions at √s = 200GeV with the PHENIX experiment Ali Hanks for the PHENIX.
Direct photons and Jet correlation in HI. Integrated I AA (0.4
Dunlop, WW What More Can Be Learned from High Pt Probes at RHIC? James Dunlop Brookhaven National Laboratory.
Oana Catu, Yale University for the STAR Collaboration Quark Matter 2008, February 4-10, Jaipur, India System size dependence of dihadron correlations and.
Hard Probes at RHIC Saskia Mioduszewski Texas A&M University Winter Workshop on Nuclear Dynamics 8 April, 2008.
WWND 03/13/06 N Grau1 Jet Correlations from PHENIX Focus entirely on A+A collisions High-trigger p T correlations –Can we do jet tomography? Low-trigger.
Direct-Photon Production in PHENIX Oliver Zaudtke for the Collaboration Winter Workshop on Nuclear Dynamics 2006.
Direct photons and jet correlations in heavy ion collisions Andrew Adare University of Colorado For the PHENIX Collaboration WWND, February 2007.
STAR Back-to-Back Di-Jet Triggered Multi-Hadron Correlations as Medium Probes in STAR Back-to-Back Di-Jet Triggered Multi-Hadron Correlations as Medium.
Interaction between jets and dense medium in heavy-ion collisions Rudolph C. Hwa University of Oregon TsingHua University, Beijing, China May 4, 2009.
Event Simulation Tools in ALICE Andreas Morsch Generator Mini-Workshop CERN, Geneva June 20, 2003.
Nov 2001 Craig Ogilvie 1 Angular Correlations at High pt: Craig Ogilvie for the Phenix Collaboration Energy-loss: increased medium-induced gluon-radiation.
Photon-Jet Correlations at RHIC Saskia Mioduszewski Texas A&M University 19 June, 2007.
High p T  0 Production in p+p, Au+Au, and d+Au Stefan Bathe UC Riverside for the Collaboration Topics in Heavy Ion Collisions McGill University, Montreal,
Jets at RHIC Jiangyong Jia
A NLO Analysis on Fragility of Dihadron Tomography in High Energy AA Collisions I.Introduction II.Numerical analysis on single hadron and dihadron production.
Identified Particle Ratios at large p T in Au+Au collisions at  s NN = 200 GeV Matthew A. C. Lamont for the STAR Collaboration - Talk Outline - Physics.
Heavy-to-light ratios as a test of medium-induced energy loss at RHIC and the LHC N. Armesto Quark Matter 2005: 18th International Conference on Ultra-Relativistic.
Winter Workshop on Nuclear Dynamics Jet studies in STAR via 2+1 correlations Hua Pei For the STAR Collaboration.
U N C L A S S I F I E D 7 Feb 2005 Studies of Hadronic Jets with the Two-Particle Azimuthal Correlations Method Paul Constantin.
13/Aug/2013, Fluc. & Corr. Workshop, Chengdu, China ShinIchi Esumi, Univ. of Tsukuba1 Flow and Jet-correlation ShinIchi Esumi Univ. of Tsukuba Flow originated.
Centrality Categorization and its Application to Physics Effects in High-Energy d+A Collisions Javier Orjuela-Koop University of Colorado Boulder For the.
Detail study of the medium created in Au+Au collisions with high p T probes by the PHENIX experiment at RHIC Takao Sakaguchi Brookhaven National Laboratory.
20-25 May 2007 The Berkeley School STAR Study of Jets with 2+1 multi-particle correlations Richard Hollis* for the STAR Collaboration * in close collaboration.
09/15/10Waye State University1 Elliptic Flow of Inclusive Photon Ahmed M. Hamed Midwest Critical Mass University of Toledo, Ohio October, 2005 Wayne.
1 A NLO Analysis on Fragility of Dihadron Tomography in High-Energy Nuclear Collisions Enke Wang Institute of Particle Physics, Central China Normal University.
High Pt physics with TOF ALICE B.V.Zagreev ITEP
Three-Particle Azimuthal Correlations Jason Glyndwr Ulery 23 March 2007 High-pT Physics at LHC.
Di-Jet Imbalance Measurements in Central Au+Au Collisions at √s NN =200 GeV from STAR Kolja Kauder for the STAR Collaboration July 02, 2015.
Jet Physics in ALICE Mercedes López Noriega - CERN for the ALICE Collaboration Hot Quarks 2006 Villasimius, Sardinia - Italy.
1 Jeffery T. Mitchell – Quark Matter /17/12 The RHIC Beam Energy Scan Program: Results from the PHENIX Experiment Jeffery T. Mitchell Brookhaven.
Energy Scan of Hadron (  0 ) Suppression and Flow in Au+Au Collisions at PHENIX Norbert Novitzky for PHENIX collaboration University of Jyväskylä, Finland.
1 Jets in Heavy Ion Collisions at the LHC Andreas Morsch CERN.
Ralf Averbeck Stony Brook University Hot Quarks 2004 Taos, New Mexico, July 19-24, 2004 for the Collaboration Open Heavy Flavor Measurements with PHENIX.
STAR Modification of high-p T hadro-chemistry in Au+Au collisions relative to p+p Anthony Timmins for the STAR Collaboration 31st July 2009 Heavy-ion III.
Francesco Noferini Bologna University Erice, Italy 31 st August 2006 Two-particle correlations: from RHIC to LHC.
Profiling hot and dense nuclear medium with high transverse momentum hadrons produced in d+Au and Au+Au collisions by the PHENIX experiment at RHIC Takao.
Probing the properties of dense partonic matter at RHIC Y. Akiba (RIKEN) for PHENIX collaboration.
Robert Pak (BNL) 2012 RHIC & AGS Annual Users' Meeting 0 Energy Ro Robert Pak for PHENIX Collaboration.
Study of b quark contributions to non-photonic electron yields by azimuthal angular correlations between non-photonic electrons and hadrons Shingo Sakai.
Ti Results: Energy and system dependence Conclusions Ridge Jet Figure 1: Sample di-hadron correlation showing the jet-like correlation and the ridge [1]
07/27/2002Federica Messer High momentum particle suppression in Au-Au collisions at RHIC. Federica Messer ICHEP th international Conference on high.
Multi-strange Baryon Correlations in p+p and d+Au Collisions at √s NN = 200 GeV Betty Bezverkhny Yale University For the Collaboration Hot Quarks ’04,
Francesco Noferini Centro Studi e Ricerche “E. Fermi” (Roma) INFN – Sez. Bologna Roma, Particle correlations in heavy ion collisions for the.
Near-side  correlations of high-p t hadrons from STAR Jörn Putschke for the STAR collaboration Lawrence Berkeley National Laboratory Weisshorn (4505m),
News from ALICE Jan PLUTA Heavy Ion Reaction Group (HIRG) Warsaw University of Technology February 22, XIII GDRE Workshop, SUBATECH, Nantes.
The Art Poskanzer School 1. 2 Physics motivation To create and study QGP – a state of deconfined, thermalized quarks and gluons predicted by QCD at high.
Hadronic resonance production in Pb+Pb collisions from the ALICE experiment Anders Knospe on behalf of the ALICE Collaboration The University of Texas.
1 Probing dense matter at extremely high temperature Rudolph C. Hwa University of Oregon Jiao Tong University, Shanghai, China April 20, 2009.
1 Jets in PHENIX Jiangyong Jia, Columbia Univerisity How to measure jet properties using two particle correlation method (In PHENIX)? Discuss formula for.
Kirill Filimonov, ISMD 2002, Alushta 1 Kirill Filimonov Lawrence Berkeley National Laboratory Anisotropy and high p T hadrons in Au+Au collisions at RHIC.
Intermediate pT results in STAR Camelia Mironov Kent State University 2004 RHIC & AGS Annual Users' Meeting Workshop on Strangeness and Exotica at RHIC.
Jet Production in Au+Au Collisions at STAR Alexander Schmah for the STAR Collaboration Lawrence Berkeley National Lab Hard Probes 2015 in Montreal/Canada.
Elliptic Flow of Inclusive Photon Elliptic Flow of Inclusive Photon Ahmed M. Hamed Midwest Critical Mass University of Toledo, Ohio Oct. 22,
Toward a  +Jet Measurement in STAR Saskia Mioduszewski, for the STAR Collaboration Texas A&M University 1.
Production, energy loss and elliptic flow of heavy quarks at RHIC and LHC Jan Uphoff with O. Fochler, Z. Xu and C. Greiner Hard Probes 2010, Eilat October.
TWO PARTICLE CORRELATION MEASUREMENTS AT PHENIX Takahito Todoroki For the PHENIX Collaboration University of Tsukuba & RIKEN Nishina Center Hard Probes.
Non-Prompt J/ψ Measurements at STAR Zaochen Ye for the STAR Collaboration University of Illinois at Chicago The STAR Collaboration:
High-pT Identified Hadron Production in Au+Au and Cu+Cu Collisions
PHENIX Measurement on High pT h-h and g-h Azimuthal Correlations
Experimental Studies of Quark Gluon Plasma at RHIC
p+p jet+jet
Identified Charged Hadron
Presentation transcript:

Two particle correlations: from RHIC to LHC Francesco Noferini Bologna University INFN – sez. Bologna ALICE-TOF Tuesday, May 16th Villasimius (Italy) HOT QUARK 2006

Tuesday, May 16th Francesco Noferini 2 OUTLINE  Results from RHIC on two particle correlation studies;  Quenching effect interpretation;  Monte Carlo Simulation of quenching effects (pythia, hijing);  Prediction at LHC;  Conclusions.

Tuesday, May 16th Francesco Noferini 3 STAR results on two particle correlations Phys.Rev.Lett.91:072304,2003 [STAR Collaboration] arXiv:nucl-ex/ Increasing the value of the p T trigger cut the back-to-back correlation is visible again. In this p T range, only for central AA collisions, the back-to-back correlation is suppressed. 4 < p T trig < 6 GeV/c 2 GeV/c < p T corr < p T trig

Tuesday, May 16th Francesco Noferini 4 Geometry of collision L1L1 L2L2 Properties: L 1 ≠L 2 Strong dependence on the impact parameter (b) ΔE i enhancement with L i Jet pair production

Tuesday, May 16th Francesco Noferini 5 Quenching Mechanism The quenching mechanism proposed by Wiedeman & Salgado is parameterized as follows (Quenching Weight): characteristic scale for the radiation mean squared momentum for unity length The spectrum emission of gluons depends only on  c and R : C.A. Salgado and U.A. Wiedemann, Phys. Rev. D 588, 303 (2000) The avarage energy loss in this prediction is proportional to L 2 = path length squared through the medium.

Tuesday, May 16th Francesco Noferini 6 Quenching in Aliroot Quenching Weight (class in Aliroot framework) based on the Wiedemann-Salgado model, takes in account the Nuclear Geometry. An effective transport coefficient is calculated starting from the formula: If we define: Then: depends on b All information Nuclear Geometry Procedure is described in ref. A.Morsch J.Phys. G31 (2005) s597.

Tuesday, May 16th Francesco Noferini 7 Energy loss and radiated gluons In the code implementation (AliPythia::Quench method) the number of radiated gluons (multiple soft) are = 1 / (1-z*), in this way the energy of radiated gluons is always lower than that of the final leading parton. * z = fraction of energy loss ALICE PPR Vol. II Chapter 6

Tuesday, May 16th Francesco Noferini 8 Some results expected from Jet Quenching N. Borghini and U. A. Wiedemann, hep-ph/ & ALICE PPR Vol. II, Chapter 6

Tuesday, May 16th Francesco Noferini 9 Dependence of q from centrality * A. Dainese, C. Loizides and G. Paic, Eur. Phys. J. C 38, (2005) Dainese, Loizides and Paic results show* that a good agreement with RHIC data is reached with q ~ 14 GeV 2 /fm for: ^ ^

Tuesday, May 16th Francesco Noferini 10 Standard HIJING results at RHIC energy Results for two particle correlation obtained from HIJING with the quenching model implemented in the original code. The partial suppression affects both the peaks (near correlation, back correlation) so it is not fine when compared with RHIC data. Energy loss in HIJING quenching model is proportional to L = path length through the medium.

Tuesday, May 16th Francesco Noferini 11 Simulation strategy

Tuesday, May 16th Francesco Noferini 12 PYTHIA 200 GeV eff in central collisions ~ 5 GeV 2 /fm Suppression vs. centrality qualitatively described by the model (factor 5 suppression wrt peripheral collisions, although the away side peak does not disappear completely). ^

Tuesday, May 16th Francesco Noferini 13 Some parameters in HIJING simulation  N gluon (emitted gluons) = 1 / (1-z);  k T lead leading parton momentum from the medium = ;  k T rad of the radiated gluons = k T lead /sqrt(N gluon );  Max. fraction of energy loss = 0.7, N gluon max = 4. eff in central collisions ~ 14 GeV 2 /fm ^ z = fraction of energy loss

Tuesday, May 16th Francesco Noferini 14 Hijing also without background  For statistics reasons some simulations are obtained for events with a single Nucleon- Nucleon collision. However, the quenching effect is simulated assuming the Glauber geometry and the Quenching Weight scheme (as for full simulations).  Results with hijing are consistent with those from PYTHIA. The advantage in using HIJING is that is possible to simulate signal and background together.

Tuesday, May 16th Francesco Noferini 15 HIJING 200 GeV HIJING single collision HIJING full event Like in PYTHIA+quech. simulations the back side correlation is strongly suppressed. The full HIJING+quench. simulations (preliminary results N trig = 2700) confirm this effect. Background doesn’t correspond exaclty to RHIC data but the Monte Carlo is not tuned yet.

Tuesday, May 16th Francesco Noferini 16 What happens at higher trigger p T ? N trig = 4493 HIJING single collision Increasing the value of the p T trigger cut the back-to-back correlation is clearly visible again as in RHIC data.

Tuesday, May 16th Francesco Noferini 17 Radiation effects at low p T with radiation effects (WR) without radiation effects (WoR) N trig = 1713(WR)/150(WoR) In the kinematic region of low pT, for central collisions, the contribution to back-to-back correlations could be due to the radiated gluons. HIJING single collision

Tuesday, May 16th Francesco Noferini 18 HIJING 5.5 TeV HIJING single collision HIJING full event Simulation at LHC energy with the quenching strength used for the 200 GeV shown a clear signal with this choice for p T cut. It is possible to test the di-hadron correllation for different p T cuts. 5.5 TeV 8 < p T trig < 15 4 < p T corr < TeV 8 < p T trig < 15 4 < p T corr < 6 |η| < 1

Tuesday, May 16th Francesco Noferini 19 Conclusions  Quenching Weight implementation in HIJING seems to work in the kinematical regions RHIC and it is more realistic than the standard quenching effect simulated in the HIJING original code;  In this way is possible to study the scenario could LHC for the observables presented herein;  Implementation of radiated gluons is still not complete but the analysis seems to be sensible at their contribution.

Tuesday, May 16th Francesco Noferini 20 Backup

Tuesday, May 16th Francesco Noferini 21 Some results expected from Jet Quenching -II A.Morsch J.Phys. G31 (2005) s597. No quenched Quenched Energy distribution around a jet axis for a jet of 100 GeV. Background:

Tuesday, May 16th Francesco Noferini 22 Other plots from STAR [STAR Collaboration] arXiv:nucl-ex/ < p T trig < 15 GeV/c

Tuesday, May 16th Francesco Noferini 23 [PHENIX Collaboration] arXiv:nucl-ex/ At lower value of p T some new effects come out.

Tuesday, May 16th Francesco Noferini 24 Impact Parameter vs. Centrality calculated in Glauber Geometry (class $ALICE/FASTGEN/AliFastGlauber.h)

Tuesday, May 16th Francesco Noferini 25 Quenching Weights in HIJING Monte Carlo THijing class AliQuenchingWeights AliFastGlauber classes HIJING Monte Carlo Fortran Call to HIJING code: Generation of partons scattering Quenching of the hard partons: call to Quenching Weight class Call to HIJING code: Fragmentation

Tuesday, May 16th Francesco Noferini 26 Pythia without quenching Rate: 60k events over 10M nucleon-nucleon collisions In the Transverse Plane (x,y) pp

Tuesday, May 16th Francesco Noferini 27 Pythia + Quenching  L (HIJING) Rate: 5k events over 10M nucleon-nucleon collisions b = 0 fm AuAu E loss = 2 GeV/fm

Tuesday, May 16th Francesco Noferini 28 Pythia + Quenching  L 2 Rate: 6k events over 10M nucleon-nucleon collisions b = 0 fm AuAu q = 1.5 GeV 2 /fm ^

Tuesday, May 16th Francesco Noferini 29 Suppression vs. Impact Parameter (b) Quenching  L Quenching  L 2 [suppression ΔΦ = π]

Tuesday, May 16th Francesco Noferini 30 Region of jet production External Region in Central Collisions AuAu b = 0 fm r