Phases of matter in the BRAHMS experiment Paweł Staszel, Marian Smoluchowski Institute of Physics Jagiellonian University for the BRAHMS Collaboration.

Slides:



Advertisements
Similar presentations
Results from BRAHMS experiment at RHIC Pawel Staszel Niels Bohr Institute for the BRAHMS Collaboration.
Advertisements

RHIC AGS Users Meeting 12 May BRAHMS Highlights Ramiro Debbe for the BRAHMS collaboration Physics Department.
High p T Suppression at Forward Rapidities Catalin Ristea Niels Bohr Institute, Copenhagen for the BRAHMS Collaboration XXXV International Symposium on.
June 17, 2003NN2003, Moscow, Jens Jørgen Gaardhøje, Niels Bohr Institute1 n100 AGeV AGeV Au+Au Ecm =  s  40 TeV THE LITTLE BIG BANG and search.
June 17, 2003NN2003, Moscow, Jens Jørgen Gaardhøje, Niels Bohr Institute1 n100 AGeV AGeV Au+Au Ecm =  s  40 TeV THE LITTLE BIG BANG and search.
Michael Murray1 Global Detectors Flavor Dynamics Michael Murray for BRAHMS C. Arsene 12, I. G. Bearden 7, D. Beavis 1, S. Bekele 12, C. Besliu 10, B. Budick.
Quark Matter 2006 ( ) Excitation functions of baryon anomaly and freeze-out properties at RHIC-PHENIX Tatsuya Chujo (University of Tsukuba) for.
Baryon-to-meson production in a wide range of baryo-chemical potential at RHIC Paweł Staszel, Marian Smoluchowski Institute of Physics Jagiellonian University.
Relativistic Heavy-Ion Collisions: Recent Results from RHIC David Hardtke LBNL.
Transverse and Longitudinal Dynamics at RHIC Paweł Staszel, Marian Smoluchowski Institute of Physics Jagiellonian University SQM 2007 Levo č a, 24–
Baryon-to-meson production in a wide range of baryo-chemical potential at RHIC Paweł Staszel, Marian Smoluchowski Institute of Physics Jagiellonian University.
1 Mar. 26 SQM2006 J.H. Lee (BNL) Recent Results from BRAHMS J.H. Lee Physics Department Brookhaven National Laboratory For the Collaboration March
Phases of matter in the BRAHMS experiment Paweł Staszel, Marian Smoluchowski Institute of Physics Jagiellonian University for the BRAHMS Collaboration.
5-12 April 2008 Winter Workshop on Nuclear Dynamics STAR Particle production at RHIC Aneta Iordanova for the STAR collaboration.
J.H. Lee BNL Correlations Fest, June 2002, BNL HBT in BRAHMS.
H. Ito University of Kansas For the BRAHMS Collaboration The BRAHMS Institutions 1 Brookhaven National Laboratory, Upton, NY 11973, U.S.A. 2 Institut de.
P + p at 200 GeV K. Hagel Cyclotron Institute, Texas A & M for the BRAHMS Collaboration The spectrometers Particle antiparticle ratios –  s dependence.
BRAHMS High p T Results from the BRAHMS Experiment Zhongbao Yin Department of Physics, University of Bergen for the BRAHMS Collaboration.
1 Nov. 15 QM2006 Shanghai J.H. Lee (BNL) Nuclear Induced Particle Suppression at Large-x F at RHIC J.H. Lee Physics Department Brookhaven National Laboratory.
BRAHMS 16. August 2004 ICHEP04 Beijing, Kina I.G.Bearden, Niels Bohr Institute 1 BRAHMS Particle Production at Forward Rapidities with BRAHMS I.G. Bearden,
Transverse dynamics at y=0 in BRAHMS Bjørn H. Samset Transverse dynamics at RHIC, March 2003 A story of centrality dependent pt spectra of identified charged.
Recent Results from the BRAHMS Experiment at RHIC Paweł Staszel, Jagellonian University for the BRAHMS Collaboration Eighth Workshop on Non-Perturbative.
1 April 21 DIS2006 J.H. Lee (BNL) SSA in BRAHMS J.H. Lee (BNL) for BRAHMS Collaboration DIS2006, Tsukuba, April 2006 Short Introduction Preliminary results.
20-26 Feb Lake Louise Eun-Joo Kim Parton energy loss, saturation, and recombination at BRAHMS Eun-Joo Kim University of Kansas For the BRAHMS collaboration.
Fouad RAMI Institut Pluridisciplinaire Hubert Curien, Strasbourg  Introduction  The BRAHMS Experiment  Overview of Main Results  Bulk observables.
BRAHMS 22. Oktober 2004 Forward Physics Workshop, KU I.G.Bearden, Niels Bohr Institute 1 BRAHMS Particle Production Studied with BRAHMS I.G. Bearden, Niels.
1 Physics at forward rapidities How well does pQCD work p+p at 200 and 62 GeV Probing the initial condition d+Au collisions at 200 GeV Final state effects.
QM 2009, Knoxville1 Forward-Rapidity Azimuthal and Radial Flow of Identified Particles for = 200 GeV Au+Au and Cu+Cu Collisions S.J. Sanders (U. Kansas)
2nd International Workshop on the critical point and the onset of deconfinement Charged mesons in Au+Au interactions at 62.4 AGeV Ionut Arsene for the.
Rapidity Dependence of Charged Hadron Yields in Central Au+Au Collisions at 200 GeV Djamel Ouerdane Niels Bohr Institute for the BRAHMS Collaboration Quark.
BRAH Broad RAnge Hadron MS Magnetic Spectrometers 2.3° 30° 90° 30° The BRAHMS HI and Spin Programs S. J. Sanders U. Kansas.
Charged-particle pseudorapidity densities in d-Au collisions at  s=200GeV/A Hironori Ito Brookhaven National Laboratory BRAHMS Collaboration.
1 Jeffery T. Mitchell – Quark Matter /17/12 The RHIC Beam Energy Scan Program: Results from the PHENIX Experiment Jeffery T. Mitchell Brookhaven.
Results from the BRAHMS Experiment at RHIC F.Rami* for the BRAHMS Collaboration * Institut de Recherches Subatomiques and Université Louis Pasteur, Strasbourg.
Results from First RHIC run QM 2001 January 15, 2001 Results from First RHIC run QM 2001 January 15, 2001 F.Videbœk Physics Department Brookhaven National.
Strangeness production in Au+Au collisions at RHIC Jens Ivar Jørdre University of Bergen, Norway.
Strangeness Measurements in BRAHMS J.H. Lee Physics Department Brookhaven National Laboratory For the BRAHMS Collaboration SQM2003 Mar  Results.
1 Results from the BRAHMS experiment at RHIC Dieter Röhrich Fysisk institutt, Universitetet i Bergen for the BRAHMS collaboration Experimental setup Stopping.
1 Results from the BRAHMS experiment at RHIC Dieter Röhrich Fysisk institutt, Universitetet i Bergen for the BRAHMS collaboration Experimental setup Stopping.
Rapidity Dependence of Pion Elliptic Flow Hironori Ito 1 Erik Johnson 2 Steve Sanders 2 BRAHMS Collaboration 1 Brookhaven National Laboratory 2 University.
Recent Results from BRAHMS from y=0 to y=3 I. G. Bearden Niels Bohr Institute University of Copenhagen, Denmark Quark Matter 2002, July 18-24, Nantes,
HIGHLIGHTS BRAHMS I.G. Bearden, Niels Bohr Institute QM'06 Shanghai 2 Outline BRAHMS Intermediate PT Soft physics.
Hadron Collider Physics 2012, 12/Nov/2012, KyotoShinIchi Esumi, Univ. of Tsukuba1 Heavy Ion results from RHIC-BNL ShinIchi Esumi Univ. of Tsukuba Contents.
BRAHMS Scanning the phases of QCD I. Arsene, I.G. Bearden, D. Beavis, C. Besliu, B. Budick, H. Bøggild, C. Chasman, C. H. Christensen, P. Christiansen,
Presentation for NFR - October 19, Trine S.Tveter Recent results from RHIC Systems studied so far at RHIC: - s NN 1/2 = 
Jaipur, India Feb title Recent Results from BRAHMS R. Debbe for the BRAHMS Collaboration Physics Dept. Brookhaven National Laboratory.
Robert Pak (BNL) 2012 RHIC & AGS Annual Users' Meeting 0 Energy Ro Robert Pak for PHENIX Collaboration.
DNP2004 Oct Hyatt Regency Chicago IL Ramiro Debbe for the BRAHMS collaboration Physics Department Forward Identified Particle Production in d+Au.
News from ALICE Jan PLUTA Heavy Ion Reaction Group (HIRG) Warsaw University of Technology February 22, XIII GDRE Workshop, SUBATECH, Nantes.
Truls Martin Larsen, BRAHMS Collaboration, QM Aug 1 Nuclear Modification factors in Cu-Cu and Au-Au collisions Truls Martin Larsen.
Rapidity dependence of charged particle yields with BRAHMS for Au+Au at 200 GeV Djamel Ouerdane for the BRAHMS collaboration Quark Matter 2002 Nantes,
Zbigniew Majka M.Smoluchowski Institute of Physics, Jagiellonian University, Kraków, Poland Review of early results from BRAHMS experiment.
Kaon Production in Central Au+Au Collisions at 200 and 63 GeV Djamel Ouerdane Niels Bohr Institute for the BRAHMS Collaboration Strange Quark Matter 2004.
Hadron Spectra and Yields Experimental Overview Julia Velkovska INT/RHIC Winter Workshop, Dec 13-15, 2002.
BRAHMS Heavy Ion Results and Perspectives Erik Bjorn Johnson RHIC & AGS Users Meeting June 8, 2006.
Eun-Joo Kim ( Chonbuk Nat. Univ.) Hongyan Yang ( Univ. of Bergen ) For the Collaboration N MF Nuclear Modification Factors at BRAHMS.
BRAHMS 18. JUNI 2003 BNL High Pt Colloquium I.G.Bearden, Niels Bohr Institute 1 BRAHMS High P T Measurements with BRAHMS I.G. Bearden, Niels Bohr Institute.
8 th February 2002Michael Murray, Texas A&M, CMS Heavy Ion Mtg at MIT Brahms: Forward Physics at RHIC T1 MTPC1 T2 MTPC2 MRS: 90 deg 6.5 msr FS: 6 deg 0.8.
HAW Sep Maui, Hawaii Ramiro Debbe BNL Physics Department The excess of positive charged particles measured at forward rapidities in d+Au.
BRAHMS Zhongbao Yin Department of Physics, University of Bergen for the BRAHMS Collaboration High p T Spectra of Protons and Charged Pions in Au+Au and.
1 Physics at forward rapidities systems p+p at 200 and 62 GeV d+Au collisions at 200 GeV Au+Au collisions observables pt-spectra nuclear modification factor.
Baryon-to-meson production in a wide range of baryo-chemical potential at RHIC Paweł Staszel, Marian Smoluchowski Institute of Physics Jagiellonian University.
Radoslaw Karabowicz for the BRAHMS Collaboration
Eun-Joo Kim University of Kansas For the BRAHMS collaboration
Tatsuya Chujo for the PHENIX collaboration
Identified hadron production in d+Au and p+p collisions at RHIC
Recent Results from the BRAHMS
BRAHMS overview Paweł Staszel,
Search for the onset of baryon anomaly at RHIC-PHENIX
Forward Physics with BRAHMS at RHIC University of Bergen & CERN
Presentation transcript:

Phases of matter in the BRAHMS experiment Paweł Staszel, Marian Smoluchowski Institute of Physics Jagiellonian University for the BRAHMS Collaboration XXXIII International Conference On High Energy Physics Moscow, –

2 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 2 Relativistic Heavy Ion Collider Au+Au d+Au p+p energies:  s NN =200GeV,  s NN =62GeV Cu+Cu PHOBOS STAR PHENIX BRAHMS

3 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 3 Outline 1.Detector setup. 2.General (bulk) characteristics of nucleus-nucleus reactions. 3.Nuclear modification at mid-rapidity 4.Nuclear modification at forward rapidity 5.Elliptic Flow 6.Summary.

4 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 4 BRaHMS Broad Range Hadron Magnetic Spectrometers Tile Ring 1 Flow Ring 2 Si Ring 1

5 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 5 Particle production and energy loss Energy density: Bjorken 1983 e BJ = 3/2  ( /  R 2  0 ) dN ch /d  assuming formation time t 0 =1fm/c: >5.0 GeV/fm 3 for 200 GeV >4.4 GeV/fm 3 for 130 GeV >3.7 GeV/fm 3 for 62.4 GeV Total  E=25.7  2.1TeV 72GeV per participant

6 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 6 Primary versus produced matter longitudinal net-kaon evolution similar as net-proton in |y|< 3 at RHIC 200 GeV) strong “association”: net-kaon / net-lambda /net-proton? BRAHMS NA49 AGS primary matter is concentrated around y  3 (  y  2.0) At 200GeV created matter is at picked at y=0

7 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 7 K - /K + and antihyperon/hyperon K - /K + = exp((2  s - 2  u,d )/T) pbar/p = exp(-6  u,d /T)  s =0  K - /K + = (pbar/p) 1/3 Fit shows that K - /K + = (pbar/p) 1/4   s = ¼  u,d How  s = ¼  u,d will work for hyperons? Hbar/H = (pbar/p) 3/4 for Lambdas = (pbar/p) 1/2 for Xis = (pbar/p) 1/4 for Omegas

8 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 8 q q hadrons leading particle leading particle Schematic view of jet production  Particles with high p t ’s (above ~2GeV/c) are primarily produced in hard scattering processes early in the collision Experimentally  depletion of the high p t region in hadron spectra  In A-A, partons traverse the medium  Probe of the dense and hot stage  p+p experiments  hard scattered partons fragment into jets of hadrons  If QGP  partons will lose a large part of their energy (induced gluon radiation)  suppression of jet production  Jet Quenching High p t suppression  jet quenching

9 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 9 Charged hadron invariant spectra Scaled N+N reference R AA = Yield(AA) N COLL (AA)  Yield(NN) Nuclear Modification Factor R AA <1  Suppression relative to scaled NN reference

10 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 10 Energy and s ystem d ependent n uclear m odification f actors at h~0 and 1 R AuAu (200 GeV) < R AuAu (63 GeV) < R CuCu (63 GeV) for charged hadrons p+p at 63 GeV is ISR Data (NPB100), RHIC-Run6 will provide better reference

11 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 11 Control measurement:  s NN =200 Excludes alternative interpretation in terms of Initial State Effects  Supports the Jet Quenching for central Au+Au collisions + back-to-back azimuthal correlation and jet structure by STAR and PHENIX

12 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 12 Nuclear modification factors (R CP, R AuAu ) for p,K,p at y~3.1 Suppression for pions and kaons: R AuAu :  < K < p R AuAu ≠ Rcp (, for 40-60% ~ 70,56)

13 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 13 R AuAu (Y=0) ~ R AuAu (y~3) for central Au+Au at √s = 200 GeV R AuAu (Y=0) ~ R AuAu (y~3) for pions and protons: accidental? Rapidity dependent interplay of Medium effect + Hydro + baryon transport

14 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS more on R AA rapidity dependence Similar level of suppresion for central collisions At forward rapidity R AA shows stronger rise towards peripheral coll. (surface -> volume emmission) Looking for scaling: dN/d  ? preliminary BE:  = 3/2  ( / S  0 ) dN ch /d  S is transwers area of overlaping region dirived from  and K spectra Is the energy density the only parameter that controls R AA ? New pp will allow for various comparisions at the same rapidities preliminary

15 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 15 Flowing at forward pions Understanding missing low-pt fraction is important for integrated v2 from FS Kaon and proton v2 will come: Statistically Challenging v2(y~0) ~ v2(y~3) for 0.5<p T <2 GeV/c dN 1 d  dp t 2  (1 + 2v 1 cos  + 2v 2 ( ,p t )cos2  ) dN d  dp t d  =

16 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 16 Examine d+Au at all rapidities Cronin enhancement suppression I. Arsene et al., BRAHMS PRL 93 (2004)

17 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 17 High energy density >> nuclear density -  y   TeV left for particle production (local) Chemical equilibration Onset of gluon saturation? Summary Strong transverse/elliptic flow in y<3 Limiting fragmentation Non-hadronic energy loss through the medium in |y|<3:

18 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 18 I.Arsene 7, I.G. Bearden 6, D. Beavis 1, S. Bekele 6, C. Besliu 9, B. Budick 5, H. Bøggild 6, C. Chasman 1, C. H. Christensen 6, P. Christiansen 6, R. Clarke 9, R.Debbe 1, J. J. Gaardhøje 6, K. Hagel 7, H. Ito 10, A. Jipa 9, J. I. Jordre 9, F. Jundt 2, E.B. Johnson 10, C.E.Jørgensen 6, R. Karabowicz 3, N. Katrynska 3, E. J. Kim 4, T.M.Larsen 11, J. H. Lee 1, Y. K. Lee 4, S.Lindal 11, G. Løvhøjden 2, Z. Majka 3, M. Murray 10, J. Natowitz 7, B.S.Nielsen 6, D. Ouerdane 6, R.Planeta 3, F. Rami 2, C. Ristea 6, O. Ristea 9, D. Röhrich 8, B. H. Samset 11, D. Sandberg 6, S. J. Sanders 10, R.A.Sheetz 1, P. Staszel 3, T.S. Tveter 11, F.Videbæk 1, R. Wada 7, H. Yang 6, Z. Yin 8, and I. S. Zgura 9 1 Brookhaven National Laboratory, USA, 2 IReS and Université Louis Pasteur, Strasbourg, France 3 Jagiellonian University, Cracow, Poland, 4 Johns Hopkins University, Baltimore, USA, 5 New York University, USA 6 Niels Bohr Institute, University of Copenhagen, Denmark 7 Texas A&M University, College Station. USA, 8 University of Bergen, Norway 9 University of Bucharest, Romania, 10 University of Kansas, Lawrence,USA 11 University of Oslo Norway 48 physicists from 11 institutions The BRAHMS Collaboration

19 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 19 BACKUP SLIDES

20 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 20 R dAu and R AA for anti-protons and BRAHMS PRELIMINARY suppression for  - but stronger for AuAu both R dA and R AA show enhancement for p-bar

21 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 21 At 200 GeV :  - /  + = 1.0, K - /K + = 0.95, pbar/p = 0.75 At 62 GeV :  - /  + = 1.0, K - /K + = 0.84, pbar/p = 0.45, At |y|<1 matter  antimatter Anti-particle to particle ratios pbar/p verus K - /K + : good statistical model description with  B =  B (y) with T~170MeV But this describes also energy depencency at y=0  only  B controls the state of matter STAR and NA47 measures pbar/p versus  - /  + Chemical freeze-out  BRAHMS PRELIMINARY It is not true for p+p BRAHMS PRELIMINARY

22 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 22 R AuAu 200 GeV BRAHMS, PRL 91, (2003) Cronin enhancement suppression at high p T significant medium effects suppression at high p T significant medium effects

23 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 23 Strong rapidity dependence CuCu data consistent with AuAu for the same N part pp pbar/  - scaling with N part  s NN =200GeV

24 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 24 K/  ratios at  =3.1,

25 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 25 Strong energy absorption model from a static 2D matter source. ( Insprired by A.Dainese (Eur.Phys.J C33,495) and A.Dainese, C.Loizides and G.Paic (hep-ph/ ) ) Parton spectrum using pp reference spectrum Parton energy loss  E ~ q.L**2 q adjusted to give observed R AA at  ~1. The change in dN/d  will result in slowly rising R AA. The modification of reference pp spectrum causes the R AA to be approximately constant as function of .

26 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 26 Summary  Large hadron multiplicities  Almost a factor of 2 higher than at SPS energy(  higher  )  Much higher than pp scaled results(  medium effects)  p/   show strong  dependency  for given energy depend only on N par  High-p T  suppression increases with energy for given centrality bin  weak dependency on rapidity of R AA which is consistent with surface jet emission  R CP can hide or enhance nuclear effects  At y=3.2 R AA shows larger suppression than R dA  Identified hadron spectra  Good description by statistical model  Large transverse flow consistent with high initial density  v2(pt) is seem to not depend on rapidity

27 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 27 FS PID using RICH Multiple settings

28 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 28 RdAu Update: Identified Particle RdAu at y~3 RdAu of identified particle consistent with published h- results dAu(  -)/dAu(  +): Valance quark isospin dominates in pp? BRAHMS Preliminary + blue - red

29 P. Staszel - Jagiellonian University, Kraków ICHEP, Moscow 2006 BRAHMS 29 Limiting Fragmentation Shift the dN ch /d  distribution by the beam rapidity, and scale by  N part . Lines up with lower energy  limiting fragmentation Au+Au  s NN =200GeV (0-5% and 30-40%) Au+Au  s NN =130GeV (0-5%) Pb+Pb  s NN =17GeV (9.4%)