Hadron Analysis in the PHENIX Muon Arms Chun Zhang Sante Fe meeting 2004.

Slides:



Advertisements
Similar presentations
Charm in AuAu200 with Silicon Run-7 (2007) BNL, KENT, NANTESBNL, March Intro X-section work Flow work.
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.
J/  measurement with the PHENIX muon arms in d-Au interactions at √ s NN = 200 GeV David Silvermyr, LANL APS April Meeting Philadelphia, April 5-8, 2003.
Photon-Jet Correlations at RHIC Saskia Mioduszewski Texas A&M University 18 July, 2007.
Fukutaro Kajihara (CNS, University of Tokyo) for the PHENIX Collaboration Heavy Quark Measurements by Weak-Decayed Electrons at RHIC-PHENIX.
Quark Matter 2006 ( ) Excitation functions of baryon anomaly and freeze-out properties at RHIC-PHENIX Tatsuya Chujo (University of Tsukuba) for.
Identified particle transverse momentum distributions in 200 GeV Au+Au collisions at RHIC 刘海东 中国科技大学.
Heavy flavor production in sqrt(s NN )=200 GeV d+Au Collisions at PHENIX DNP 2013 Matthew Wysocki, Oak Ridge National Lab Newport News, Virginia, Oct 25,
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.
Xiaorong Wang, SQM Measurement of Open Heavy Flavor with Single Muons in pp and dAu Collisions at 200 GeV Xiaorong Wang for PHENIX 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.
Forward Calorimeter Upgrades in PHENIX: Past and Future Richard Hollis for the PHENIX Collaboration University of California, Riverside Winter Workshop.
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.
Cold Nuclear Matter E ff ects on J/ ψ as Constrained by d+Au Measurements at √s NN = 200 GeV in the PHENIX Experiment Matthew Wysocki University of Colorado.
Non-photonic electron production in STAR A. G. Knospe Yale University 9 April 2008.
SQM2006, 03/27/2006Haibin Zhang1 Heavy Flavor Measurements at STAR Haibin Zhang Brookhaven National Laboratory for the STAR Collaboration.
Sourav Tarafdar Banaras Hindu University For the PHENIX Collaboration Hard Probes 2012 Measurement of electrons from Heavy Quarks at PHENIX.
Recent measurements of open heavy flavor production by PHENIX Irakli Garishvili, Lawrence Livermore National Laboratory PHENIX collaboration  Heavy quarks.
1 The Study of D and B Meson Semi- leptonic Decay Contributions to the Non-photonic Electrons Xiaoyan Lin CCNU, China/UCLA for the STAR Collaboration 22.
Xiaoyan LinQuark Matter 2006, Shanghai, Nov , Study B and D Contributions to Non- photonic Electrons via Azimuthal Correlations between Non-
Photon-Jet Correlations at RHIC Saskia Mioduszewski Texas A&M University 19 June, 2007.
Sevil Salur for STAR Collaboration, Yale University WHAT IS A PENTAQUARK? STAR at RHIC, BNL measures charged particles via Time Projection Chamber. Due.
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,
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.
J/  measurement in d-Au interactions at s NN = 200 GeV David Silvermyr, LANL Physics Motivation - J/  production, gluon shadowing. Run-3 d-Au (2003)
As one evolves the gluon density, the density of gluons becomes large: Gluons are described by a stochastic ensemble of classical fields, and JKMMW argue.
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.
R CP Measurement with Hadron Decay Muons in Au+Au Collisions at √s NN =200 GeV WooJin Park Korea University For the PHENIX Collaboration.
A piece of pQCD in Heavy Ion Collisions Youngil Kwon IPAP Yonsei Univ. 1. We describe parton model and its link to the heavy ion collision. 2. We describe.
1 Measurement of heavy flavour production in p-p and d-Au collisions at RHIC by the detection of the inclusive muons Ju Hwan Kang (Yonsei Univ.) for the.
Heavy flavor production at RHIC Yonsei Univ. Y. Kwon.
Recent Charm Measurements through Hadronic Decay Channels with STAR at RHIC in 200 GeV Cu+Cu Collisions Stephen Baumgart for the STAR Collaboration, Yale.
Xiaoyan LinHard Probes 2006, Asilomar, June Azimuthal correlations between non-photonic electrons and charged hadrons in p+p collisions from STAR.
Measurement of J/  -> e + e - and  C -> J/  +   in dAu collisions at PHENIX/RHIC A. Lebedev, ISU 1 Fall 2003 DNP Meeting Alexandre Lebedev, Iowa State.
Measurement of photons via conversion pairs with PHENIX at RHIC - Torsten Dahms - Stony Brook University HotQuarks 2006 – May 18, 2006.
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.
1 Correlations between J/ψ and charged hadrons Chun Zhang / Jiangyong Jia.
1 Fukutaro Kajihara (CNS, University of Tokyo) for the PHENIX Collaboration Heavy Quark Measurement by Single Electrons in the PHENIX Experiment.
Study of b quark contributions to non-photonic electron yields by azimuthal angular correlations between non-photonic electrons and hadrons Shingo Sakai.
Yichun Xu (USTC/BNL)April 27-29, Hangzhou, CHINA1 Measurements of identified meson and baryon production at high p T in p+p and Au+Au collisions at STAR.
07/27/2002Federica Messer High momentum particle suppression in Au-Au collisions at RHIC. Federica Messer ICHEP th international Conference on high.
1 Charged hadron production at large transverse momentum in d+Au and Au+Au collisions at  s=200 GeV Abstract. The suppression of hadron yields with high.
PHENIX results on J/  production in Au+Au and Cu+Cu collisions at  S NN =200 GeV Hugo Pereira Da Costa CEA Saclay, for the PHENIX collaboration Quark.
High Density Matter and Searches for Huan Z. Huang Department of Physics and Astronomy University of California, Los Angeles The STAR Collaboration.
Outline Motivation The STAR/EMC detector Analysis procedure Results Final remarks.
Measurement of Azimuthal Anisotropy for High p T Charged Hadrons at RHIC-PHENIX The azimuthal anisotropy of particle production in non-central collisions.
Kirill Filimonov, ISMD 2002, Alushta 1 Kirill Filimonov Lawrence Berkeley National Laboratory Anisotropy and high p T hadrons in Au+Au collisions at RHIC.
Reduction of Background in Observation of W Decay Using the Forward Vertex (FVTX) detector at PHENIX Abraham Meles New Mexico State University APS April.
Inclusive cross section and single transverse-spin asymmetry of very forward neutron production at PHENIX Spin2012 in Dubna September 17 th, 2012 Yuji.
Intermediate pT results in STAR Camelia Mironov Kent State University 2004 RHIC & AGS Annual Users' Meeting Workshop on Strangeness and Exotica at RHIC.
Toward a  +Jet Measurement in STAR Saskia Mioduszewski, for the STAR Collaboration Texas A&M University 1.
PHENIX J/  Measurements at  s = 200A GeV Wei Xie UC. RiverSide For PHENIX Collaboration.
(di)-Hadron Production in d+Au Collisions at RHIC Mickey Chiu.
Two particle correlations: from RHIC to LHC Francesco Noferini Bologna University INFN – sez. Bologna ALICE-TOF Tuesday, May 16th Villasimius (Italy) HOT.
Kansas OCT 2004 Ramiro Debbe for the BRAHMS collaboration Physics Department BRAHMS Forward Physics Program Forward Physics at RHIC and LHC University.
Quark Matter 2002, July 18-24, Nantes, France Dimuon Production from Au-Au Collisions at Ming Xiong Liu Los Alamos National Laboratory (for the PHENIX.
High-pT Identified Hadron Production in Au+Au and Cu+Cu Collisions
PHENIX Measurement on High pT h-h and g-h Azimuthal Correlations
W. Xie (Riken-BNL Research Center) for PHENIX Collaboration
kT Asymmetry in Longitudinally Polarized Collisions
Tatsuya Chujo for the PHENIX collaboration
kT Asymmetry in Longitudinally Polarized pp Collisions
Single  production at forward rapidity by PHENIX
High-pT Identified Charged Hadrons in √sNN = 200 GeV Au+Au Collisions
NKS2 Meeting with Bydzovsky NKS2 Experiment / Analysis Status
Identified Charged Hadron
Identified Charged Hadron Production at High pT
Masahiro Konno (Univ. of Tsukuba) for the PHENIX Collaboration Contact
Presentation transcript:

Hadron Analysis in the PHENIX Muon Arms Chun Zhang Sante Fe meeting 2004

Outline Introduction Motivation for measuring hadrons in muon arms Hadron Identification Hadron R cp measurement in dAu Preview for Au-Au physics

Sensitive to Low and High x Partons Saturation? shadowing enhancement EMC effect Fermi Effect Forward armBackward arm Deuteron Gold Forward (North) High x 1,Low x 2 Backward (South) Low x 1, High x 2 Log 10 (x 1 ) Log 10 (x 2 )

Gluon Saturation Color Glass Condensate (CGC) [L.D. McLerran and R.Renugopalan Phys. ReV. D49, 2233(1994)] Heavy nuclei increases the saturation scale by A 1/3. At RHIC, Q s (y) = Λ 2 A 1/3 e λy. [Dmitri Kharzeev et. al hep- ph/ ] Note the rapidity dependence.

Why Hadrons in Muon Arms? PHENIX Muon Arms designed for muons Heavy flavor via single muons is challenging Tom Hemmick proposed measuring charge particles in muon arms in May 2003 It turns out we can separate muons and hadrons and measure hadrons.

h/  Separation Muons stopping in gap 3 have lost 2.5 GeV of energy via dE/dx Hadrons stopping in gap 3 typically have much higher energy and stop inelastically MC muons Blue is for muons stopping at gap3 Purple is for muons stopping at gap2 Momentum (GeV/c) Stopped muons Stopped hadrons

Purity of Hadron Sample Two sources of contamination in hadron sample Deep muons can be reconstructed as shallow roads due to inefficiency in MUID Stopped muon sample has a small high momentum tail MC and data studies show the contamination is less than 4% “Identified” hadrons All tracks

Punch Through versus Shower Two types of hadrons: 1) Punch Through = hadron only suffering dE/dx loss 2) Shower = hadron suffering multiple-hadronic interactions before stopping in MUID Monte Carlo Red = Punch-through Black = Shower Punch through hadrons allow us to extract momentum at the vertex (just correcting for dE/dx). Shower hadrons only give us a lower limit on the momentum at the vertex (and thus blur the physics).

Cuts to Reduce Shower Hadrons Shower hadrons often do not point back to the vertex, but punch- through hadrons do. Real data MC Primary vector v x Momentum vector v p Primary vector : the vector connect vertex and station1 hit. Momentum vector : the vector of momentum measured at station1 Where, θ x is the polar angle of v x, θ p is the polar angle of v p

Punch-through vs. Shower Hadrons θ xp cut dramatically reduces shower Hadrons (see MC plot below) Monte Carlo Red = Punch-through Black = Shower

Hadron R cp Any deviation from one indicates nuclear modification.

R cp verse p T Red open circle : north; Reminder low x in gold, high x in dueteron Black solid dot : south; reminder high x in gold, low x in deuteron

R cp verse η 4.0 > pT > 1.0 GeV/c

Compare with BRAHMS 4.0 > pT > 2.5 GeV/c A recent CGC Calculation [Dimitri Kharzeev et. al. hep-ph/ ] shows very good consistency with BRAHMS results. curves : e λy

Nuclear Stopping Power Soft physics pushes the particle production to backward rapidities by exchanging rapidy between projectile and target.

R cp at Backward Red squares are calculated from BRAHMS published dN/dη (nucl- ex/ ) in order to compare with our backward rapidities. Note their mean p T is less than 500 MeV/c Black dots : PHENIX date with 4 > p T > 1 GeV/c

Plot Rcp as Qs Qs = 0.13e λy N coll

Two particle correlation analysis with muon arms “the disappearance of back-to-back correlations is a very basic property of saturation, see e.g. p.16 in hep- ph/ ,” Dima Kharzeev. In dAu, we can Trigger on punch through hadron in muon arm, and look at phi distribution in central arms (relative to muon arm hadron). This analysis is still very preliminary, but it is very promising.

Two particle correlation analysis with muon arms Conditional yield dAu : p T trig > 2.0GeV/c p T asso > 2.0 GeV/c pp : p T trig > 2.0GeV/c p T asso > 2.0 GeV/c Jet goes to Muon arm Jet goes to central arm No near side since trigger particle and associated particles are far from each other in rapidity. Trigger particle in muon arm Associated particles in central arm

[1] hep-ph/ Look forward to RUN4 “CGC” and “energy loss [1] ” will compete with each other in hadron production at forward rapidity, which will suppress the high p T hadron more. Two particle correlation using hadrons from muon arms will add more information on jet, flow studies.

Backup slides

People asked if we can get a pt spectrum. We discussed this within the ppg, if a normalized spectrum, we think it is almost impossible, because it requires the understanding of the particle composition, and the kinematics in the eta range we are interested, and there is no previous measurement. We have to rely on some assumptions and theoretical models to do lots of simulation. People may argue that the RCP we measured does not really reflect the RCP at vertex because of the modulation from absorber. Here I have a simple estimation on how large the effect is. Particle composition on RCP

If we think of an extreme case that the absorber is thick enough to stop all the pions and protons, then g  and g p become zero. Then, From central arm measurements, we know RCP for pions and kaons are not different within errors, and RCP for proton is 20% larger than pions. And also from central arm measurements, protons takes 20% of charge particle yields. Assume these observations keeps when we go to different rapidity. So, it is 4% effect, you may want to argue that all the measurement in central arm will be different from muon arms, but since there is no such measurement, we may not be able to do better than this simple estimation. Where the difference beetween g and f is determined by the difference of the absorption between different particles.

p T corr >2.0 GeV/C p T trig > 1GeV/C p T trig > 2GeV/C Pythia simulation

Introduction Few words about high x region Nuclear stopping power

Introduction Gluon saturation at small x in HERA “Geometric Scaling” [A. K. Golec- Biernat et al. PRL 86, 596 (2001 )] R 0 “saturation radius” ~x defines a scale: τ=Q 2 R 0 2 (x) When 1/(QR 0 ) → ∞, the cross section goes the constant, saturated.

Hadron measurement in PHENIX muon arms More over, track is measured inside MUTR chamber without knowing its particle species, then swimming through absorber under the assumption that it is a muon. So track momentum inside chamber tells us more precise information. selection of hadrons. 1.) track stop at gap2 or gap3. 2.) ptot_sta1 > 1.8GeV/c, 3 sigma away from muon peak. 3.) track chi square per freedom less ) To cut off low angle background we require eta -2.0 data

How well we measure different hadrons (p T inclusive -p T exclusive )/p T exclusive p T inclusive : propagate track through absorber with assumption of muon. p T exclusive : propagate track through absorber with correct track ID muons pionskaons For muon/pion/kaon 5% difference if dE/dx through absorber. data

p T of Primary particle in each vertex p T bins MC High pT background

p T of primary particle in each vertex p T bins No error is put on this plots Although we have quit a few a shower particles, but after theta cut, most of survivor are close in phase space with their primary particles.

Shower Contamination Level MC Define high p T background. p T has a resolution about σ = 10%. if p T of primary particle is 3σ higher than measured vertex p T, it is regarded as high pT background. Otherwise it is signal.