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Dive into the research topics where C. Reed is active.

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Featured researches published by C. Reed.


Nuclear Physics | 2005

The PHOBOS Perspective on Discoveries at RHIC

B. B. Back; M. D. Baker; M. Ballintijn; D.S. Barton; Bruce Becker; Russell Richard Betts; A. A. Bickley; R. Bindel; A. Budzanowski; Wit Busza; A. Carroll; Z. Chai; M.P. Decowski; E. García; T. Gburek; N. George; K. Gulbrandsen; S. Gushue; C. Halliwell; J. Hamblen; A.S. Harrington; M. Hauer; G.A. Heintzelman; C. Henderson; David Jonathan Hofman; R. S. Hollis; R. Holynski; Burt Holzman; A. Iordanova; E. Johnson

This paper describes the conclusions that can be drawn from the data taken thus far with the PHOBOS detector at RHIC. In the most central Au+Au collisions at the highest beam energy, evidence is found for the formation of a very high energy density system whose description in terms of simple hadronic degrees of freedom is inappropriate. Furthermore, the constituents of this novel system are found to undergo a significant level of interaction. The properties of particle production at RHIC energies are shown to follow a number of simple scaling behaviors, some of which continue trends found at lower energies or in simpler systems. As a function of centrality, the total number of charged particles scales with the number of participating nucleons. When comparing Au+Au at different centralities, the dependence of the yield on the number of participants at higher p T (∼4 GeV/c) is very similar to that at low transverse momentum. The measured values of charged particle pseudorapidity density and elliptic flow were found to be independent of energy over a broad range of pseudorapidities when effectively viewed in the rest frame of one of the colliding nuclei, a property we describe as “extended longitudinal scaling”. Finally, the centrality and energy dependences of several observables were found to factorize to a surprising degree.


Physical Review Letters | 2003

Significance of the fragmentation region in ultrarelativistic heavy-ion collisions.

B. B. Back; M. D. Baker; D.S. Barton; R.R. Betts; M. Ballintijn; A. A. Bickley; R. Bindel; A. Budzanowski; W. Busza; A. Carroll; M.P. Decowski; E. García; N. George; K. Gulbrandsen; S. Gushue; C. Halliwell; J. Hamblen; G.A. Heintzelman; C. Henderson; David Jonathan Hofman; R. S. Hollis; R. Holynski; B. Holzman; A. Iordanova; E. Johnson; J.L. Kane; J. Katzy; N. Khan; W. Kucewicz; P. Kulinich

We present measurements of the pseudorapidity distribution of primary charged particles produced in Au+Au collisions at three energies, sqrt[s(NN)]=19.6, 130, and 200 GeV, for a range of collision centrali-ties. The distribution narrows for more central collisions and excess particles are produced at high pseudorapidity in peripheral collisions. For a given centrality, however, the distributions are found to scale with energy according to the limiting fragmentation hypothesis. The universal fragmentation region described by this scaling grows in pseudorapidity with increasing collision energy, extending well away from the beam rapidity and covering more than half of the pseudorapidity range over which particles are produced. This approach to a universal limiting curve appears to be a dominant feature of the pseudorapidity distribution and therefore of the total particle production in these collisions.


Physical Review C | 2011

Phobos results on charged particle multiplicity and pseudorapidity distributions in Au+Au, Cu+Cu, d+Au, and p+p collisions at ultra-relativistic energies

B. Alver; B. B. Back; M. D. Baker; M. Ballintijn; D.S. Barton; R. R. Betts; A. A. Bickley; R. Bindel; A. Budzanowski; W. Busza; A. Carroll; Z. Chai; V. Chetluru; M.P. Decowski; E. García; T. Gburek; N. George; K. Gulbrandsen; S. Gushue; C. Halliwell; J. Hamblen; G.A. Heintzelman; C. Henderson; D. J. Hofman; R. S. Hollis; R. Holynski; B. Holzman; A. Iordanova; E. Johnson; J.L. Kane

Pseudorapidity distributions of charged particles emitted in Au+Au, Cu+Cu, d+Au, and p+p collisions over a wide energy range have been measured using the PHOBOS detector at the BNL Relativistic Heavy-Ion Collider (RHIC). The centrality dependence of both the charged particle distributions and the multiplicity at midrapidity were measured. Pseudorapidity distributions of charged particles emitted with |{eta}|<5.4, which account for between 95% and 99% of the total charged-particle emission associated with collision participants, are presented for different collision centralities. Both the midrapidity density dN{sub ch}/d{eta} and the total charged-particle multiplicity N{sub ch} are found to factorize into a product of independent functions of collision energy, {radical}(s{sub N{sub N}}), and centrality given in terms of the number of nucleons participating in the collision, N{sub part}. The total charged particle multiplicity, observed in these experiments and those at lower energies, assumes a linear dependence of (lns{sub N{sub N}}){sup 2} over the full range of collision energy of {radical}(s{sub N{sub N}})=2.7-200 GeV.


Physical Review C | 2008

Importance of correlations and fluctuations on the initial source eccentricity in high-energy nucleus-nucleus collisions

B. Alver; A. Iordanova; K. W. Wozniak; Constantin Loizides; Andrzej Olszewski; P. Steinberg; S.S. Vaurynovich; W. Li; B. Wyslouch; E. García; P. Walters; C. Reed; G. van Nieuwenhuizen; Baker; G. S. F. Stephans; S. Manly; R. R. Betts; M. Ballintijn; Marguerite Tonjes; D.S. Barton; E. A. Wenger; W. Busza; B. Wosiek; A. Trzupek; G. Roland; V. Chetluru; R. Verdier; T. Gburek; B. B. Back; R. S. Hollis

In relativistic heavy-ion collisions, anisotropic collective flow is driven, event by event, by the initial eccentricity of the matter created in the nuclear overlap zone. Interpretation of the anisotropic flow data thus requires a detailed understanding of the effective initial source eccentricity of the event sample. In this paper, we investigate various ways of defining this effective eccentricity using the Monte Carlo Glauber (MCG) approach. In particular, we examine the participant eccentricity, which quantifies the eccentricity of the initial source shape by the major axes of the ellipse formed by the interaction points of the participating nucleons. We show that reasonable variation of the density parameters in the Glauber calculation, as well as variations in how matter production is modeled, do not significantly modify the already established behavior of the participant eccentricity as a function of collision centrality. Focusing on event-by-event fluctuations and correlations of the distributions of participating nucleons, we demonstrate that, depending on the achieved event-plane resolution, fluctuations in the elliptic flow magnitude v{sub 2} lead to most measurements being sensitive to the root-mean-square rather than the mean of the v{sub 2} distribution. Neglecting correlations among participants, we derive analytical expressions for the participant eccentricity cumulants as amorexa0» function of the number of participating nucleons, N{sub part}, keeping nonnegligible contributions up to O(1/N{sub part}{sup 3}). We find that the derived expressions yield the same results as obtained from mixed-event MCG calculations which remove the correlations stemming from the nuclear collision process. Most importantly, we conclude from the comparison with MCG calculations that the fourth-order participant eccentricity cumulant does not approach the spatial anisotropy obtained assuming a smooth nuclear matter distribution. In particular, for the Cu+Cu system, these quantities deviate from each other by almost a factor of 2 over a wide range in centrality. This deviation reflects the essential role of participant spatial correlations in the interaction of two nuclei.«xa0less


Physical Review Letters | 2001

Charged particle pseudorapidity density distributions from Au+Au collisions at

B. B. Back; W. Kucewicz; Andrzej Olszewski; A. Budzanowski; C. Halliwell; L. Rosenberg; P. Steinberg; M. Reuter; W. Skulski; J.-L. Tang; K. W. Wozniak; C. Henderson; Willis Lin; B. Wyslouch; E. Garcia; C. Reed; I.C. Park; G. van Nieuwenhuizen; A. H. Wuosmaa; Baker; Burt Holzman; C. Vale; G. S. F. Stephans; S. Manly; R. R. Betts; R. Verdier; G.A. Heintzelman; D.S. Barton; P. Sarin; A. Carroll

The charged-particle pseudorapidity density dN(ch)/d eta has been measured for Au+Au collisions at sqrt[s(NN)] = 130 GeV at RHIC, using the PHOBOS apparatus. The total number of charged particles produced for the 3% most-central Au+Au collisions for /eta/<or=5.4 is found to be 4200+/-470. The evolution of dN(ch)/d eta with centrality is discussed, and compared to model calculations and to data from proton-induced collisions. The data show an enhancement in charged-particle production at midrapidity, while in the fragmentation regions, the results are consistent with expectations from pp and pA scattering.


Physical Review C | 2005

\sqrt{s_{NN}}

B. B. Back; W. Kucewicz; A. Iordanova; A. Budzanowski; C. Halliwell; Andrzej Olszewski; L. Rosenberg; P. Steinberg; M. Reuter; W. Skulski; J.-L. Tang; K. Wozniak; C. Henderson; Willis Lin; B. Wyslouch; E. García; C. Reed; A. A. Bickley; M. Nguyen; G. van Nieuwenhuizen; Baker; I.C. Park; G. S. F. Stephans; S. Manly; R.R. Betts; M. Ballintijn; R. Verdier; Marguerite Tonjes; G.A. Heintzelman; D.S. Barton

This paper describes the measurement of elliptic flow for charged particles in Au+Au collisions at sqrt(sNN)=200 GeV using the PHOBOS detector at the Relativistic Heavy Ion Collider (RHIC). The measured azimuthal anisotropy is presented over a wide range of pseudorapidity for three broad collision centrality classes for the first time at this energy. Two distinct methods of extracting the flow signal were used in order to reduce systematic uncertainties. The elliptic flow falls sharply with increasing eta at 200 GeV for all the centralities studied, as observed for minimum-bias collisions at sqrt(sNN)=130 GeV.


Physics Letters B | 2004

= 130-GeV

B. B. Back; M. D. Baker; D.S. Barton; R. R. Betts; M. Ballintijn; A. A. Bickley; R. Bindel; A. Budzanowski; W. Busza; A. Carroll; M.P. Decowski; E. García; N. George; K. Gulbrandsen; S. Gushue; C. Halliwell; J. Hamblen; G.A. Heintzelman; C. Henderson; D. J. Hofman; R. S. Hollis; R. Holynski; B. Holzman; A. Iordanova; E. Johnson; J.L. Kane; J. Katzy; N. Khan; W. Kucewicz; P. Kulinich

We present transverse momentum distributions of charged hadrons produced in Au+Au collisions at sqrt(s_NN) = 200 GeV. The spectra were measured for transverse momenta p_T from 0.25 to 4.5 GeV/c in a rapidity range of 0.2 < y_pi < 1.4. The evolution of the spectra is studied as a function of collision centrality, from 65 to 344 participating nucleons. The results are compared to data from proton-antiproton collisions and Au+Au collisions at lower RHIC energies. We find a significant change of the spectral shape between proton-antiproton and peripheral Au+Au collisions. Comparing peripheral to central Au+Au collisions, we find that the yields at high p_T exhibit approximate scaling with the number of participating nucleons, rather than scaling with the number of binary collisions.


Physical Review Letters | 2005

Centrality and pseudorapidity dependence of elliptic flow for charged hadrons in Au+Au collisions at sNN=200 GeV

B. B. Back; M. D. Baker; M. Ballintijn; D.S. Barton; R.R. Betts; A. A. Bickley; R. Bindel; A. Budzanowski; W. Busza; A. Carroll; Z. Chai; M.P. Decowski; E. García; T. Gburek; N. George; K. Gulbrandsen; S. Gushue; C. Halliwell; J. Hamblen; M. Hauer; G.A. Heintzelman; C. Henderson; David Jonathan Hofman; R. S. Hollis; R. Holynski; B. Holzman; A. Iordanova; E. Johnson; J.L. Kane; J. Katzy

This paper describes the measurement of the energy dependence of elliptic flow for charged particles in Au+Au collisions using the PHOBOS detector at the Relativistic Heavy Ion Collider (RHIC). Data taken at collision energies of


Physical Review C | 2004

Charged hadron transverse momentum distributions in Au+Au collisions at sNN=200 GeV

B. B. Back; M. D. Baker; M. Ballintijn; D.S. Barton; R. R. Betts; A. A. Bickley; R. Bindel; A. Budzanowski; W. Busza; A. Carroll; M.P. Decowski; E. García; N. George; K. Gulbrandsen; S. Gushue; C. Halliwell; J. Hamblen; G.A. Heintzelman; C. Henderson; D. J. Hofman; R. S. Hollis; R. Holynski; B. Holzman; A. Iordanova; E. Johnson; J.L. Kane; J. Katzy; N. Khan; W. Kucewicz; P. Kulinich

sqrt{s_{_{NN}}} =


Physical Review C | 2006

Energy dependence of elliptic flow over a large pseudorapidity range in Au+Au collisions at the BNL relativistic heavy ion collider.

B. B. Back; A. Iordanova; K. W. Wozniak; C. Halliwell; A. Olszewski; H. Seals; P. Steinberg; M. Hauer; F.L.H. Wolfs; S.S. Vaurynovich; C. Henderson; Willis Lin; B. Wyslouch; E. Garcia; C. Reed; A. A. Bickley; G. van Nieuwenhuizen; Baker; B. Holzman; C. Vale; G. S. F. Stephans; S. Manly; R. R. Betts; M. Ballintijn; M. B. Tonjes; D.S. Barton; E. A. Wenger; A. Carroll; W. Busza; P. Kulinich

19.6, 62.4, 130 and 200 GeV are shown over a wide range in pseudorapidity. These results, when plotted as a function of

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D.S. Barton

Brookhaven National Laboratory

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M. Ballintijn

Massachusetts Institute of Technology

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W. Busza

Massachusetts Institute of Technology

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C. Halliwell

University of Illinois at Chicago

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C. Henderson

Massachusetts Institute of Technology

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B. B. Back

Argonne National Laboratory

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A. Iordanova

University of Illinois at Chicago

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K. Gulbrandsen

University of Copenhagen

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A. A. Bickley

University of Colorado Boulder

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A. Carroll

Brookhaven National Laboratory

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