Study of hadron properties in cold nuclear matter with HADES Pavel Tlustý, Nuclear Physics Institute, Řež, Czech Republic for the HADES Collaboration ,

Slides:



Advertisements
Similar presentations
Yorito Yamaguchi For the PHENIX collaboration CNS, University of Tokyo 10/14/2008ATHIC2008 1/13.
Advertisements

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.
Charm & bottom RHIC Shingo Sakai Univ. of California, Los Angeles 1.
Charm hadron production at RHIC in combination model Motivation Quark combination model Results and discussions Summary JiNan China Tao Yao,
Di-electron Continuum at PHENIX Yorito Yamaguchi for the PHENIX collaboration CNS, University of Tokyo Rencontres de Moriond - QCD and High Energy Interactions.
STAR Patricia Fachini 1 Brookhaven National Laboratory Motivation Data Analysis Results Conclusions Resonance Production in Au+Au and p+p Collisions at.
Ali Hanks - APS Direct measurement of fragmentation photons in p+p collisions at √s = 200GeV with the PHENIX experiment Ali Hanks for the PHENIX.
1 Baryonic Resonance Why resonances and why  * ? How do we search for them ? What did we learn so far? What else can we do in the.
5-12 April 2008 Winter Workshop on Nuclear Dynamics STAR Particle production at RHIC Aneta Iordanova for the STAR collaboration.
Motivations Results on Σ(1385) with FOPI detector Results on Λp correlation Conclusions / Outlook Towards strange multi-baryonic clusters, measurement.
Christina Markert 23 rd WWND Montana, Big Sky, Feb Resonance production in jets Christina Markert University of Texas at Austin Motivation Resonance.
Dilepton production in HIC at RHIC Energy Haojie Xu( 徐浩洁 ) In collaboration with H. Chen, X. Dong, Q. Wang Hadron2011, WeiHai Haojie Xu( 徐浩洁 )
Masashi Kaneta, LBNL Masashi Kaneta for the STAR collaboration Lawrence Berkeley National Lab. First results from STAR experiment at RHIC - Soft hadron.
Pion beam experiment Physics Motivation (from HADES point of view)
Yuriy Riabov QM2006 Shanghai Nov.19, Measurement of the leptonic and hadronic decays of  and ω mesons at RHIC by PHENIX Yuriy Riabov for the Collaboration.
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.
Φ and ω decay modes ratios Stavinskiy, Possible rescattering of hadronic daughters  Reconstruction probability decrease for hadronic mode ω(782)
Φ and ω decay modes ratios Stavinskiy,ITEP, Why , ω ? If resonance decays before kinetic freeze-out  Possible rescattering of hadronic daughters.
Nov2,2001High P T Workshop, BNL Julia Velkovska High pt Hadrons from  sNN = 130 GeV Au-Au collisions measured in PHENIX Julia Velkovska (BNL) for PHENIX.
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.
Single Electron Measurements at RHIC-PHENIX T. Hachiya Hiroshima University For the PHENIX Collaboration.
1 Identified Di-hadron Correlation in Au+Au & PYTHIA Simulation Jiaxu Zuo Shanghai Institute of Applied Physics & BNL CCAST Beijing,
SQM2004, Cape Town, Sept. 16, 2004 STAR 1 Cronin Effect for the identified particles from 200 GeV d+Au collisions Xiangzhou Cai Shanghai INstitute of Applied.
Omega meson in nucleus, experimental study K. Ozawa (Univ. of Tokyo)
ENHANCED DIRECT PHOTON PRODUCTION IN 200 GEV AU+AU IN PHENIX Stefan Bathe for PHENIX, WWND 2009.
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.
Background from pion beam interactions with LH2 & solid state targets J.Biernat/I.Koenig/J. Markert/W.Przygoda/P.Salabura.
Di-electron measurements with HADES at SIS100 Motivation Motivation HADES di-electron results (SIS 18) - summary HADES di-electron results (SIS 18) - summary.
N* Production in α-p and p-p Scattering (Study of the Breathing Mode of the Nucleon) Investigation of the Scalar Structure of baryons (related to strong.
Victor Ryabov (PNPI) for the PHENIX Collaboration QM2005 Budapest Aug,06, First measurement of the  - meson production with PHENIX experiment at.
1 Jeffery T. Mitchell – Quark Matter /17/12 The RHIC Beam Energy Scan Program: Results from the PHENIX Experiment Jeffery T. Mitchell Brookhaven.
Final results from HERMES on hadronization in nuclear environment Z. Akopov (on behalf of the HERMES Collaboration)
Systematic measurement of light vector mesons at RHIC-PHNEIX Yoshihide Nakamiya Hiroshima University, Japan (for the PHENIX Collaboration) Quark Matter.
WWND 2011 Michael Weber for the HADES collaboration Inclusive e + e - pair production in p+p and p+Nb collisions at E = 3.5 GeV Introduction.
Charged Kaon Production Yield Studies with Stretcher Sergei Striganov Fermilab Future of Kaon Physics at Fermilab August 21, Fermilab.
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.
Nucleon-Nucleon collisions. Nucleon-nucleon interaction at low energy Interaction between two nucleons: basic for all of nuclear physics Traditional goal.
Probing the properties of dense partonic matter at RHIC Y. Akiba (RIKEN) for PHENIX collaboration.
1 Fukutaro Kajihara (CNS, University of Tokyo) for the PHENIX Collaboration Heavy Quark Measurement by Single Electrons in the PHENIX Experiment.
NSTAR2011, Jefferson Lab, USA May 17-20, 2011 Mitglied der Helmholtz-Gemeinschaft Tamer Tolba for the WASA-at-COSY collaboration Institut für Kernphysik.
07/27/2002Federica Messer High momentum particle suppression in Au-Au collisions at RHIC. Federica Messer ICHEP th international Conference on high.
1 Guannan Xie Nuclear Modification Factor of D 0 Mesons in Au+Au Collisions at √s NN = 200 GeV Lawrence Berkeley National Laboratory University of Science.
1 Measurement of Heavy Quark production at RHIC-PHENIX Yuhei Morino CNS, University of Tokyo.
24 Nov 2006 Kentaro MIKI University of Tsukuba “electron / photon flow” Elliptic flow measurement of direct photon in √s NN =200GeV Au+Au collisions at.
Measurement of photons via conversion pairs with the PHENIX experiment at RHIC - Torsten Dahms - State University of New York at Stony Brook for the PHENIX.
January 13, 2004A. Cherlin1 Preliminary results from the 2000 run of CERES on low-mass e + e - pair production in Pb-Au collisions at 158 A GeV A. Cherlin.
Diagnosing energy loss: PHENIX results on high-p T hadron spectra Baldo Sahlmüller, University of Münster for the PHENIX collaboration.
Mass states of light vector mesons are considered to be sensitive probes of partial chiral symmetry restoration theoretically expected in high energy and/or.
Kirill Filimonov, ISMD 2002, Alushta 1 Kirill Filimonov Lawrence Berkeley National Laboratory Anisotropy and high p T hadrons in Au+Au collisions at RHIC.
Christina MarkertHirschegg, Jan 16-22, Resonance Production in Heavy Ion Collisions Christina Markert, Kent State University Resonances in Medium.
Intermediate pT results in STAR Camelia Mironov Kent State University 2004 RHIC & AGS Annual Users' Meeting Workshop on Strangeness and Exotica at RHIC.
Systematic measurement of light vector mesons at RHIC-PHNEIX Yoshihide Nakamiya Hiroshima University, Japan (for the PHENIX Collaboration) Quark Matter.
Motivations - HADES C+C 1 AGeV, 2 AGeV - measured excess: beam energy dependence p+p, d+p 1.25 (A)GeV - Studies of NN-Bremsstrahlung and  Dalitz decay.
HADRON 2009, FloridaAnar Rustamov, GSI Darmstadt, Germany 1 Inclusive meson production at 3.5 GeV pp collisions with the HADES spectrometer Anar Rustamov.
J. Zhao Hard Probe 2012, Cagliari 1, Lawrence Berkeley National Lab, USA 2, Shanghai Institution of Applied Physics, CAS, China Di-electron Production.
High p T hadron production and its quantitative constraint to model parameters Takao Sakaguchi Brookhaven National Laboratory For the PHENIX Collaboration.
HADES The Baryon-rich Side of the Phase Diagram
Strangeness Production in Heavy-Ion Collisions at STAR
dielectrons penetrating probes
Modification of Fragmentation Function in Strong Interacting Medium
Dilepton production with HADES
In-medium properties of the omega meson from a measurement of
Identified Charged Hadron
Identified Charged Hadron Production
Identified Charged Hadron Production at High pT
Systematic measurements of light vector mesons in RHIC-PHENIX
Masahiro Konno (Univ. of Tsukuba) for the PHENIX Collaboration Contact
Presentation transcript:

Study of hadron properties in cold nuclear matter with HADES Pavel Tlustý, Nuclear Physics Institute, Řež, Czech Republic for the HADES Collaboration , . p - beams W. Weise m [GeV] q [GeV] A T [GeV -2 ] M. Post et al., NPA 741 (2004) 81 e- e+e+  Partial decay branch might be suppressed by collisional broadening: HIC and cold matter experiments: Ceres, NA60, Phenix KEK-E325, Clas, CBELSA/TAPS.. -results mostly consistent with broadening of mass distribution, no indication of mass shift except  line shape results of KEK-E325 - some experiments (Clas, KEK-E325) not sensitive to low monenta mesons - no complete picture yet Dileptons from p+p and p+Nb at 3.5 GeV Charged  mesons from p+Nb at 3.5 GeV Motivation and Method Modification of hadronic properties in nuclear matter predicted by theory – already at normal nuclear density: Effect most prominent at low momenta –  spectral function : Experimental method: reconstruction of the  vector meson (VM) mass distribution from their e + e - pair decay + no final state interaction - low yields Advantage over nucleus-nucleus collisions (HIC): No density evolution in “cold” nuclear matter, controlled conditions Direct measurements of the ρ: NA60, nucleus-nucleus collisions centrality dependent broadening, no shift R.Arnaldi et al. PRL 96 (2006) Indirect measurements of ω-width: CBELSA/TAPS:  N reaction  yield not affected by secondaries strong broadening (factor ≈16) M.Nanova arXiv: [nucl-ex] HADES - operates on beam of SIS18 heavy-ion synchrotron at GSI Darmstadt - measures e + e - pairs from p, ,and heavy-ion induced reactions with large acceptance in solid angle and momentum - important for reconstruction of low momenta mesons where (1) medium modifications are predicted (2) most mesons decay inside the nucleus - p+Nb at 3.5 Gev measured, with p+p at the same energy as a reference Momentum cut important: Largest effect expected at low momenta (see above). Low momenta mesons decay mostly inside nucleus where the change of the line shape is expected: HADES acceptance allows cut on low momenta, even in the VM mass region! : Momentum cut Preliminary Scaling of pp and pNb data: two methods consistent method 1 – reaction cross section * number of participants method 2 –  0 yield Invariant mass distributions:  meson peak at GeV clearly identified Scaled data: no obvious difference Measured data Preliminary HSDcalculations : Fast pairsSlow pairs Preliminary “fast” pairs - the distribution for pp and pNb is the same. “slow” pairs - visible difference, see zoomed picture on the right side: Fast Slow Slow zoomed into VM region: additional broad contribution below the  peak (bands represent sys. errors) Invariant mass distributions for low (p 0.8 GeV) momenta pairs Preliminary - pions (M ee <0.15 GeV/c 2 ) show flat behavior - higher invariant mass regions rise with decreasing momentum → feeding due to secondary reactions - omega : no dependence on momentum ω-mesons: identified ω's show also a flat behavior No feeding from secondary collisions due to strong broadening and decreased partial branching ratio..? ρ-mesons: No strong decrease of the partial branching ratio expected since it is already broad in vacuum Due to the ρ coupling to baryonic resonances a solid theoretical description needed to extract possible broadening or mass shifts Preliminary Momentum dependence of various sources Conclusion HADES data:    =    tot, scaling constant to HARP-CDP data is  tot = 848 ± 14 mb Normalization to HARP-CDP data Motivation HADES measures particle multiplicities per reaction, which have to be recalculated to cross sections to compare data from pp and pA systems. p+p reaction: measured pp elastic scattering yield is matched to known cross section. p+A reaction: measured charged pion multiplicity is matched to pion cross section from existing pA data scaling constant is the total reaction cross section    =    t tot Measured data contribute to the results from systematic studies of the pion production in the proton-nucleus collisions, and can be used for tuning of transport models (see e.g. K.Gallmeister, U.Mosel, arXiv: [hep-ex] ), in the region of transition of the pion source from simple NN collisions to emission of thermalized pions from a baryonic matter, when increasing the atomic number of the target nucleus. Summary 200 < p < 1000 MeV/c 30  <  < 90  closest system to p+Nb at 3.5 GeV p+A at 3,5,8,12 GeV/c Bolshakova A. et al. HARP-CDP Collaboration EPJ C63 (2009) , EPJ C64 (2009) Existing data:  cross sections from pA 4 closest system to p+Nb at 3.5 GeV were used to compare with our data: p+Cu and p+Ta at 3 and 5 GeV/c (see below). Before the comparison, the HARP-CDP cross sections from these 4 systems were rescaled to expected values for p+Nb at 3 GeV via interpolation in 2D energy – atomic number space. same as on the left side, in the log scale: Multiplicities of charged pions from p+Nb at 3 GeV were measured. From comparison with the HARP-CDP data the p+Nb total cross section was extracted as  tot = 848 mb, with systematic error of 15%. This allows for an absolute normalization of the measured data, including dilepton production. Measured data together with results of systematic studies of pion production in p+p and p+A can be used for adjusting of transport models in the region between elementary p+p and proton-nucleus collisions. Preliminary Electron pair production in “cold” nuclear matter: Measured data Multiplicity of  - measured in various polar angle regions Statistical errors are negligible, systematic errors are 15% (not shown). Preliminary