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Measurement of ϕ-meson production in Cu+Au collisions at sNN=200 GeV and U+U collisions at sNN=193 GeV

N. J. Abdulameer et al. (PHENIX Collaboration)
Phys. Rev. C 107, 014907 – Published 13 January 2023

Abstract

The PHENIX experiment reports systematic measurements at the Relativistic Heavy Ion Collider of ϕ-meson production in asymmetric Cu+Au collisions at sNN=200GeV and in U+U collisions at sNN=193GeV. Measurements were performed via the ϕK+K decay channel at midrapidity |η|<0.35. Features of ϕ-meson production measured in Cu+Cu, Cu+Au, Au+Au, and U+U collisions were found to not depend on the collision geometry, which was expected because the yields are averaged over the azimuthal angle and follow the expected scaling with nuclear-overlap size. The elliptic flow of the ϕ meson in Cu+Au, Au+Au, and U+U collisions scales with second-order-participant eccentricity and the length scale of the nuclear-overlap region (estimated with the number of participating nucleons). At moderate pT, ϕ-meson production measured in Cu+Au and U+U collisions is consistent with coalescence-model predictions, whereas at high pT the production is in agreement with expectations for in-medium energy loss of parent partons prior to their fragmentation. The elliptic flow for ϕ mesons measured in Cu+Au and U+U collisions is well described by a (2+1)-dimensional viscous-hydrodynamic model with specific-shear viscosity η/s=1/4π.

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  • Received 25 July 2022
  • Accepted 28 September 2022

DOI:https://doi.org/10.1103/PhysRevC.107.014907

©2023 American Physical Society

Physics Subject Headings (PhySH)

Nuclear Physics

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Vol. 107, Iss. 1 — January 2023

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Images

  • Figure 1
    Figure 1

    The PHENIX detector configuration for data taking in 2012.

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  • Figure 2
    Figure 2

    Shown are three examples of invariant-mass distributions for the K+K pairs in 20%–60% Cu+Au collisions at sNN=200 GeV at 2.0<pT<3.0 GeV/c and π/12<Δϕ<π/6 rad. The distributions contain (a) no PID, (b) one-kaon PID, and (c) two-kaons PID methods after subtraction of the uncorrelated background estimated using the event-mixing technique. Spectra are fitted to the sum of a Voigt function and a polynomial of the third order, which describe the ϕ-meson signal and the residual background, respectively.

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  • Figure 3
    Figure 3

    The invariant transverse momentum spectra measured for ϕ mesons in (a) Cu+Au at sNN=200GeV and (b) U+U collisions at sNN=193GeV at midrapidity. The statistical uncertainties are represented by vertical lines (hidden by the markers) while the systematic uncertainties are represented by rectangles around the points. Panels (c) and (d) show data-to-fit ratios.

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  • Figure 4
    Figure 4

    The ϕ-meson nuclear-modification factors RAB measured as a function of pT in different centrality intervals of (a) to (d) Cu+Au collisions at sNN=200GeV and (e) to (h) U+U collisions at sNN=193GeV at midrapidity |η|<0.35. The normalization uncertainty from p+p of about 9.7% is not shown. Here and below the type C uncertainties are shown as boxes near unity.

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  • Figure 5
    Figure 5

    The ϕ-meson integrated nuclear-modification factors RAB measured as a function of Npart in Cu+Au,Au+Au,andCu+Cu collisions at sNN=200GeV and U+U collisions at sNN=193GeV integrated in (a) 2.2<pT<5.0 GeV/c and (b) pT>5.0 GeV/c at midrapidity |η|<0.35. The tilted bars represent correlated uncertainties from Glauber–Monte Carlo simulation. The Au + Au and Cu + Cu results are taken from Ref. [38].

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  • Figure 6
    Figure 6

    The comparison of ϕ-meson RAB values to π0- and η-meson RAB values measured as a function of pT in different centrality intervals of (a) to (d) Cu+Au collisions at sNN=200GeV and (e) to (h) U+U collisions at sNN=193GeV at midrapidity. The RAB values for π0- and η-meson RAB in Cu+Au and U+U collisions are from [12, 51].

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  • Figure 7
    Figure 7

    The comparison of ϕ-meson RAB values measured as a function of pT in different centrality intervals of Cu+Au collisions at sNN=200GeV at midrapidity (|η|<0.35) to ampt model and pythia/angantyr model predictions.

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  • Figure 8
    Figure 8

    The comparison of ϕ meson (a) v2 and (b) v2/(ɛNpart1/3) measured as a function of pT in Cu+Au, U+U, and Au+Au [39, 52] collisions at sNN=200GeV at midrapidity (|η|<0.35).

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  • Figure 9
    Figure 9

    The comparison of elliptic flow (a,b) v2 and (c) v2/nq values measured for ϕ mesons as a function of (a) pT, (b) KET, and (c) KET/nq in 0%–20% Cu+Au collisions to corresponding v2 and v2/nq values for π± mesons and (anti)protons [(p+p¯)/2]. The values for π± mesons and (p+p¯)/2 v2 are taken from [49].

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  • Figure 10
    Figure 10

    The comparison of elliptic flow (a,b) v2 and (c) v2/nq for ϕ mesons measured as a function of (a) pT, (b) KET, and (c) KET/nq in 20%–60% Cu+Au collisions to corresponding v2 and v2/nq values for π± mesons and (anti)protons [(p+p¯)/2]. The values for π± mesons and (p+p¯)/2 v2 are taken from [49].

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  • Figure 11
    Figure 11

    The comparison of elliptic flow (a,b) v2 and (c) v2/nq for ϕ mesons measured as a function of (a) pT, (b) KET, and (c) KET/nq in 0%–50% U+U collisions to corresponding v2 and v2/nq values for π± mesons and (anti)protons [(p+p¯)/2].The values for π± mesons and (p+p¯)/2 v2 are taken from [53].

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  • Figure 12
    Figure 12

    The comparison of elliptic flow v2 (pT) for ϕ mesons measured in (a) 0%–20%, (b) 20%–40%, (c) 40%–60%, and (d) 20%–60% Cu+Au collisions and (e) 0%–50% U+U collisions to iebe-vishnu hydrodynamic model predictions with specific viscosity η/s=1/(4π) and ampt model predictions.

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