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REVIEW 2 major objections 5 minor 98 references

Medium-induced modification of azimuthal correlations of electrons from heavy-flavor hadron decays with charged particles in Pb-Pb collisions at $\sqrt{s_{\rm{NN}} = 5.02}$ TeV

T0 review · 2 major / 5 minor · reviewed 2026-08-06 · deepseek-v4-flash

Pith's one-line read This first measurement of azimuthal correlations with heavy-flavor triggers in Pb-Pb collisions reports a hint of near-side enhancement at low momentum and a significant away-side suppression at high momentum.

desk verdict First Pb–Pb HF-decay electron–hadron correlations, carefully done; the flow baseline's muon-for-electron v_n proxy is the one real soft spot, not fatal. read the letter →

arxiv 2507.13197 v1 pith:TK7Q6D4D submitted 2025-07-17 nucl-ex hep-ex

classification nucl-exhep-ex PACS 25.75.-q
keywords heavy-flavorelectronsazimuthalcorrelationsPb-Pbcollisionsquark-gluonplasmajetquenchingper-triggernuclearmodificationfactoranisotropicflowbaselineheavy-quarkenergyloss
verification ladder T0 review T1 audit T2 compute T3 formal

The pith

A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.

The reading

This paper reports the first azimuthal-correlation measurement in the heavy-flavor sector of lead-lead collisions, correlating electrons from charm- and beauty-hadron decays with charged particles. It aims to establish how the quark-gluon plasma modifies the particle content of jets initiated by heavy quarks, using the per-trigger nuclear modification factor $I_{\rm AA}$ as the comparison to proton-proton data. The central result is a pattern: in central collisions the near side shows a hint of extra low-momentum particles below 3 GeV/$c$, while the away side shows suppressed yields above 4 GeV/$c$, with no resolved difference from light-flavor or strange triggers. A fair reader would care because heavy quarks are expected to lose less energy than light quarks in the plasma, so this measurement tests mass-dependent jet quenching with a new observable.

What carries the argument

The central object is the background-subtracted two-particle azimuthal-correlation distribution $S(\Delta\phi)$ between trigger electrons and associated charged particles. It is built from a same-event distribution corrected by event mixing, with hadron contamination and electron pairs from photon conversions and Dalitz decays subtracted statistically, and with the uncorrelated-pair contribution described by a flow-modulated baseline $B(\Delta\phi)=b(1+2\sum_n v_n^{c,b\to e} v_n^{\rm assoc} \cos(n\Delta\phi))$. A von Mises function models the near-side peak; after baseline subtraction, per-trigger yields are integrated in fixed $\Delta\phi$ windows and divided by the corresponding pp yields to form $I_{\rm AA}$. The load-bearing element is the baseline, whose $v_n$ coefficients come from muon measurements of heavy-flavor flow instead of electron measurements.

What would settle it

Measure $v_2$ and $v_3$ of inclusive electrons from heavy-flavor hadron decays in the same $4<p_{\rm T}<16$ GeV/$c$ electron range and 0-10% and 30-50% centrality bins, recompute the baseline with those values, and check whether the near-side $I_{\rm AA}$ below 3 GeV/$c$ and away-side $I_{\rm AA}$ above 4 GeV/$c$ move beyond the quoted baseline uncertainties; if they do, the reported modification pattern is an artifact of the muon-flow proxy.

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Extended reading notes

Core claim

The discovery claim is that, for the first time at LHC energies, the azimuthal correlation between a heavy-flavor decay electron ($4 < p_{\rm T}^{\rm e} < 16$ GeV/$c$) and associated charged particles ($1 < p_{\rm T}^{\rm assoc} < 7$ GeV/$c$) is measurably modified in Pb-Pb collisions relative to pp. In 0-10% central collisions, the per-trigger $I_{\rm AA}$ on the near side is consistent with unity above 3 GeV/$c$ but shows a 1.27$\,\sigma$ hint of enhancement below 3 GeV/$c$, while on the away side it falls to about 0.5 for associated particles above 4 GeV/$c$, a 2.5$\,\sigma$ suppression. In 30-50% central collisions the same trends appear with larger uncertainties. The authors interpret the near-side hint as possible medium excitation or extra gluon radiation and the away-side suppression as energy loss of the recoiling parton, and they find the heavy-flavor $I_{\rm AA}$ consistent with dihadron and $K^0_{\rm S}$ triggers, so no mass dependence is visible within current precision.

Load-bearing premise

The calculation that removes uncorrelated background pairs relies on a "flow" pedestal whose amplitude is taken from measurements of muons rather than electrons; if electrons flow differently in these momentum and centrality ranges, the reported peak yields and $I_{\rm AA}$ shifts.

Editorial extensions

If this is right

  • Heavy-flavor jets in central Pb-Pb collisions appear to gain soft ($p_{\rm T}<3$ GeV/$c$) particles on the near side relative to pp, consistent with medium response or induced radiation adding low-momentum fragments.
  • Away-side particles above 4 GeV/$c$ are suppressed to about half the pp rate, implying substantial energy loss by the recoiling parton and a modified shower at large angles.
  • The similarity of $I_{\rm AA}$ for heavy-flavor, inclusive-hadron, and strange triggers means that, at these transverse momenta, the per-trigger modification of associated yields does not resolve a quark-mass dependence.
  • The measured per-trigger yields and $I_{\rm AA}$ values in the kinematic bins give new constraints for theoretical calculations of heavy-quark transport and medium-induced parton-shower modification.

Reading between the lines

Editorial extensions of the paper, not claims the author makes directly.

  • The near-side enhancement hint, if confirmed, would be evidence that the quark-gluon plasma responds to the passing heavy-quark jet by emitting soft particles, not just that the heavy quark itself loses energy.
  • The use of muon flow as a proxy for electron flow is the most fragile step: a dedicated measurement of $v_2$ and $v_3$ for electrons from heavy-flavor decays in the same $p_{\rm T}$ and centrality bins could either strengthen or erase the 1.27$\,\sigma$ near-side enhancement.
  • A natural extension would be to repeat this analysis with D-meson triggers in higher-statistics data, where the charm quark is tagged directly, and to compare charm and beauty contributions separately at low associated $p_{\rm T}$.
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Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, and a circularity audit.

Referee Report

2 major / 5 minor

Summary. The paper reports the first measurement of azimuthal correlations between electrons from heavy-flavor hadron decays and charged particles in Pb-Pb collisions at sqrt(s_NN) = 5.02 TeV, for the 0-10% and 30-50% centrality classes. The analysis covers trigger electrons with 4 < pT^e < 12 GeV/c (with split intervals 4-7 and 7-16 GeV/c) and associated charged particles with 1 < pT^assoc < 7 GeV/c, using the ALICE detector. After event-mixing corrections, hadron-contamination subtraction, and LS/ULS subtraction of electrons from photon conversions and Dalitz decays, the correlation distributions are fitted with a von Mises near-side peak plus a flow-modulated baseline whose v_n coefficients are taken from external ATLAS and ALICE measurements. The results are compared with the corresponding pp measurement, and per-trigger near-side and away-side yields are used to compute I_AA. In 0-10% central collisions the authors report a 1.27-sigma hint of near-side enhancement for pT^assoc < 3 GeV/c and a 2.5-sigma away-side suppression for pT^assoc > 4 GeV/c, while the heavy-flavor I_AA is found to be consistent with light-flavor and strange-particle triggers within uncertainties.

Significance. If the results are correct, this is a genuinely new observable: the first LHC measurement of azimuthal correlations triggered by a particle from the heavy-flavor sector in Pb-Pb collisions. The paper is careful in its treatment of the dominant background sources, uses a mixed-event correction, separates correlated and uncorrelated systematics, and presents upper limits where away-side yields are consistent with zero. The claims are appropriately hedged, and the comparison with pp collisions and with light-flavor triggers provides useful empirical constraints on medium-modified heavy-flavor jet fragmentation. The main quantitative weaknesses are the unquantified use of muon v_n as a proxy for electron v_n in the flow baseline and the data-driven LS normalization scale factors in the photonic-electron subtraction, both of which directly affect the reported yields and I_AA values.

major comments (2)
  1. [Section 3.4, Eq. (4); Section 4; Table 2] The flow baseline uses v_n for electrons from heavy-flavor decays that are fixed to ATLAS measurements for muons from heavy-flavor decays [85] in the 0-10% and 30-40% centrality classes, whereas the present semicentral class is 30-50%, and the v_n values are averaged using the muon pT spectrum [49] rather than the electron pT spectrum. Section 4 propagates only the quoted uncertainty +/- sigma_vn of these external values and reports it to be negligible, but the muon-to-electron proxy error and the centrality mismatch are not propagated. This is numerically material: for 4 < pT^e < 12 GeV/c and 1 < pT^assoc < 2 GeV/c in 0-10% central collisions, the pedestal is b = 103.0 rad^-1 (Table 2) and the flow-modulation product 2 b v_2^e v_2^assoc is of the same order as the near-side yield of 0.953 +/- 0.154. A relative error of about 10% in v_2^e would shift the near-side yield by an amount comparable to its baseline systematic, and the quoted 1.27-sigma enhancement and 2.5-sigma away-side suppression would move accordingly. The authors should add a quantitative systematic for the muon-to-electron proxy and the centrality mismatch, or explicitly restrict the conclusions to a level that is robust under such a shift.
  2. [Section 3.3, Eq. (2); Section 4] The LS normalization scale factors (1.045, 1.038, and 1.114 for the three trigger-electron pT intervals) are data-driven constants used to match the like-sign invariant-mass distribution to the unlike-sign distribution in a sideband, yet Section 4 does not report a systematic variation of these scale factors. The background-electron correction enters Eq. (2) linearly through (S_ULS - S_LS)/epsilon_tag; an uncertainty on the scale factor directly shifts the subtracted photonic component and therefore the per-trigger yields and I_AA. The 5% (3%) 'background electron' systematic is obtained by varying partner-track selections and the invariant-mass window, which does not necessarily cover the sideband-normalization uncertainty. Please add a variation of the LS scale factors, or an equivalent closure test, to the systematic budget.
minor comments (5)
  1. [References, Introduction] Reference [14] appears to be an unrelated cosmology paper (Horava-Lifshitz early universe phase transition) and should be replaced with a suitable reference for the strongly interacting quark-gluon plasma.
  2. [Figures 4 and 5] The captions should state explicitly that the 30-50% data points are displaced horizontally by 0.2 GeV/c for visibility; currently the displacement appears only inside the figure labels.
  3. [Section 5.2] Please specify how the quoted significances (1.27 sigma for the near-side enhancement and 2.5 sigma for the away-side suppression) are computed, in particular whether they combine several pT bins and how correlated systematics are treated; this would make the claims reproducible from the plotted values.
  4. [Equation (1) and surrounding text] The notation for the mixed-event normalization is inconsistent: the text uses both 'beta_ME' and 'beta' for the normalization factor; please define it once and use a single symbol throughout.
  5. [Section 3.4] The statement that higher-order flow coefficients (n >= 4) give a negligible contribution to B(Delta phi) would benefit from a quantitative estimate, since this assumption is part of the baseline model and is not tested against data.

Circularity Check

0 steps flagged · score 0.0 of 10

No significant circularity: the I_AA ratio rests on external pp data and fixed flow coefficients, with no fitted quantity renamed as a prediction.

full rationale

The paper's central quantitative claims are the per-trigger yields and I_AA values after subtracting the baseline B(Delta phi) of Eq. 4. The flow coefficients entering B are taken from published ATLAS and ALICE measurements (Refs. [85] and [86]) and are fixed in the fit, not fitted to the Pb-Pb correlation data being reported. The ATLAS muon proxy for electron flow is an external input with a possible systematic bias, but it is not a fitted parameter renamed as a prediction, so it does not constitute circularity. The pedestal parameter b is free in the fit, but it is a nuisance background normalization, not presented as a physics result. The I_AA denominator is the previously published pp measurement of Ref. [11], which is independent of the Pb-Pb yields measured here. The analysis procedure largely follows Ref. [11], and the von Mises peak shape and baseline form are standard modeling choices; neither is derived from the claimed near-side enhancement or away-side suppression. There is no uniqueness theorem imported from the authors, no self-citation chain that forces the result, and no renaming of a known empirical pattern. The self-citations that appear are procedural or provide external benchmark data, and they are not load-bearing in a circular sense. The derivation is therefore self-contained with respect to the circularity patterns considered.

Assumptions & free parameters 3 free parameters · 4 assumptions · 0 invented entities

No new particles, forces, or conserved quantities are introduced. The analysis relies on standard QCD jet-correlation phenomenology and on several data-driven corrections, listed above.

free parameters (3)
  • LS normalization scale factor (4 < pT_e < 12 GeV/c) = 1.045
    Sec. 3.3: like-sign invariant-mass distribution scaled to match unlike-sign in the 0.2-0.25 GeV/c^2 sideband in Pb-Pb; affects background electron subtraction and thus yields.
  • LS normalization scale factor (4 < pT_e < 7 GeV/c) = 1.038
    Sec. 3.3: same sideband matching for the lower trigger pT interval.
  • LS normalization scale factor (7 < pT_e < 16 GeV/c) = 1.114
    Sec. 3.3: same sideband matching for the higher trigger pT interval.
assumptions (4)
  • domain assumption The uncorrelated-pair background plus anisotropic flow is described by B(Delta phi) = b(1 + 2 sum_{n=2,3} v_n^{c,b->e} v_n^{assoc} cos(n Delta phi)), with n>=4 negligible.
    Sec. 3.4; if higher harmonics or non-cosinusoidal flow contribute, baseline subtraction is biased.
  • domain assumption Electron v_n from heavy-flavor decays can be replaced by ATLAS muon v_n from heavy-flavor decays.
    Sec. 3.4; explicit substitution due to the lack of electron measurements; the systematic effect on the baseline is reported as negligible compared to the pedestal uncertainty, but not directly validated.
  • domain assumption The pp measurement of Ref. [11] is an appropriate reference for I_AA when the same pT-ordering requirement and integration windows are applied.
    Sec. 5.2; if the trigger-associated pT ordering bias differs between pp and Pb-Pb because of energy loss, the I_AA interpretation changes.
  • domain assumption Background electrons from photon conversions and Dalitz decays are removed via ULS-LS subtraction with a partner-tagging efficiency from HIJING+GEANT3, with LS normalized by a constant scale factor.
    Sec. 3.3; if the scale factor is pT-dependent or the tagging efficiency is mismodeled, the subtracted yields are biased.

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Cite this review

Pith. "Pith review of Medium-induced modification of azimuthal correlations of electrons from heavy-flavor hadron decays with charged particles in Pb-Pb collisions at $\sqrt{s_{\rm{NN}} = 5.02}$ TeV." pith.science (2026). https://pith.science/paper/TK7Q6D4D

@misc{pith2026250713197,
  author       = {Pith},
  title        = {Pith review of: Medium-induced modification of azimuthal correlations of electrons from heavy-flavor hadron decays with charged particles in Pb-Pb collisions at $\sqrts_\rmNN = 5.02$ TeV},
  year         = {2026},
  howpublished = {\url{https://pith.science/paper/TK7Q6D4D}},
  note         = {Machine review of arXiv:2507.13197}
}
abstract

The azimuthal-correlation distributions between electrons from the decays of heavy-flavor hadrons and associated charged particles in Pb-Pb collisions at $\sqrt{s_{\rm NN}} = 5.02$ TeV are reported for the 0-10% and 30-50% centrality classes. This is the first measurement to provide access to the azimuthal-correlation observables in the heavy-flavor sector in Pb-Pb collisions. The analysis is performed for trigger electrons from heavy-flavor hadron decays with transverse momentum $4 < p_{\rm T}^{\rm e} < 16$ GeV/$c$, considering associated particles within the transverse-momentum range $1 < p_{\rm T}^{\rm assoc} < 7$ GeV/$c$, and a pseudorapidity difference of $|\Delta\eta| < 1$ between the trigger electron and associated particles. The per-trigger nuclear modification factor ($I_{\rm AA}$) is calculated to compare the near- and away-side peak yields to those in pp collisions at $\sqrt{s} = 5.02$ TeV. In 0-10% central collisions, the $I_{\rm AA}$ indicates a hint of enhancement of associated-particle yields with $p_{\rm T} < 3$ GeV/$c$ on the near side, and a suppression of yields with $p_{\rm T} > 4$ GeV/$c$ on the away side. The $I_{\rm AA}$ for electron triggers from heavy-flavor hadron decays is compared with that for light-flavor and strange-particle triggers to investigate the dependence on different fragmentation processes and parton-medium dynamics, and is found to be the same within uncertainties.

Figures

Figures reproduced from arXiv: 2507.13197 by the authors.

Figure 1
Figure 1. Azimuthal-correlation distributions of electrons from heavy-flavor hadron decays and charged particles before baseline subtraction for 4 < p e T < 12 GeV/c and different associated pT intervals, for the central (0–10%, top panels) and semicentral (30–50%, bottom panels) Pb–Pb collisions at √ sNN = 5.02 TeV. The distributions are fitted with a von Mises function to describe the NS peak (solid gray line) and a baselin… view at source ↗
Figure 2
Figure 2. Comparison of the azimuthal-correlation distributions of electrons from heavy-flavor hadron decays and charged particles measured in the 0–10% centrality class Pb–Pb collisions and in pp collisions [11], after the baseline subtraction, for 4 < p e T < 12 GeV/c and different associated pT intervals. The statistical (uncorrelated systematic) uncertainties are shown as vertical lines (filled boxes). The uncertainties o… view at source ↗
Figure 3
Figure 3. Comparison of the azimuthal-correlation distributions of electrons from heavy-flavor hadron decays and charged particles measured in the 30–50% centrality class Pb–Pb collisions and in pp collisions [11], after the baseline subtraction, for 4 < p e T < 12 GeV/c and different associated pT intervals. The statistical (uncorrelated systematic) uncertainties are shown as vertical lines (filled boxes). The uncertainties … view at source ↗
Figures from the paper (7 more)
Figure 4
Figure 4. Figure 4: Per-trigger associated yields of the NS (left) and AS (right) peaks for 4 < p e T < 12 GeV/c as a function of p assoc T in Pb–Pb collision centrality classes 0–10% and 30–50%, compared to those obtained from minimum￾bias pp collisions. The statistical (systematic) unce…
Figure 5
Figure 5. Figure 5: Per-trigger nuclear modification factor (IAA) of NS (left) and AS (right) associated yields, for electrons from heavy-flavor hadron decays in the interval 4 < p e T < 12 GeV/c as a function of p assoc T in Pb–Pb collisions of centrality classes 0–10% and 30–50%. The st…
Figure 6
Figure 6. Figure 6: Per-trigger NS (left) and AS (right) associated peak yields for electrons from heavy-flavor hadron decays in the intervals 4 < p e T < 7 GeV/c and 7 < p e T < 16 GeV/c as a function of p assoc T in central Pb–Pb collisions, compared to measurements in pp collisions [11…
Figure 7
Figure 7. Figure 7: Per-trigger nuclear modification factor (IAA) of the NS (left) and AS (right) associated peak yields for electrons from heavy-flavor hadron decays in intervals 4 < p e T < 7 GeV/c compared to 7 < p e T < 16 GeV/c as a function of p assoc T in central Pb–Pb collisions. …
Figure 8
Figure 8. Figure 8: IAA of NS (left) and AS (right) associated peak yield from correlation distributions of electron from heavy-flavor hadron decays as the trigger particle (7 < p e T < 16 GeV/c) compared with that of charged hadrons and K0 S as trigger particles (8 < p trig T < 16 GeV/c …
Figure 1
Figure 1. Figure 1: 26 [PITH_FULL_IMAGE:figures/full_fig_p026_1.png]
Figure 1
Figure 1. Figure 1: 27 [PITH_FULL_IMAGE:figures/full_fig_p027_1.png]

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Works this paper leans on

98 extracted references · 28 canonical work pages

  1. [85]

    Measurement of azimuthal anisotropy of muons from charm and bottom hadrons in Pb+Pb collisions at √sNN = 5.02 TeV with the ATLAS detector

    ATLAS Collaboration, G. Aad et al., “Measurement of azimuthal anisotropy of muons from charm and bottom hadrons in Pb+Pb collisions at √sNN = 5.02 TeV with the ATLAS detector”, Phys. Lett. B 807 (2020) 135595, arXiv:2003.03565 [nucl-ex]

  2. [49]

    Measurement of the nuclear modification factor for muons from charm and bottom hadrons in Pb+Pb collisions at 5.02 TeV with the ATLAS detector

    ATLAS Collaboration, G. Aad et al., “Measurement of the nuclear modification factor for muons from charm and bottom hadrons in Pb+Pb collisions at 5.02 TeV with the ATLAS detector”,Phys. Lett. B 829 (2022) 137077, arXiv:2109.00411 [nucl-ex]

  3. [1]

    Finite-mass effects on inclusive B meson hadroproduction

    B. A. Kniehl, G. Kramer, I. Schienbein, and H. Spiesberger, “Finite-mass effects on inclusive B meson hadroproduction”, Phys. Rev. D 77 (2008) 014011, arXiv:0705.4392 [hep-ph]

  4. [2]

    QCD analysis of first b cross-section data at 1.96-TeV

    M. Cacciari, S. Frixione, M. L. Mangano, P. Nason, and G. Ridolfi, “QCD analysis of first b cross-section data at 1.96-TeV”, JHEP 07 (2004) 033, arXiv:hep-ph/0312132

  5. [3]

    Collinear subtractions in hadroproduction of heavy quarks

    B. A. Kniehl, G. Kramer, I. Schienbein, and H. Spiesberger, “Collinear subtractions in hadroproduction of heavy quarks”, Eur . Phys. J. C41 (2005) 199–212, arXiv:hep-ph/0502194

  6. [4]

    Charm cross-sections for the Tevatron Run II

    M. Cacciari and P. Nason, “Charm cross-sections for the Tevatron Run II”, JHEP 09 (2003) 006, arXiv:hep-ph/0306212

  7. [5]

    The anti- kt jet clustering algorithm

    M. Cacciari, G. P. Salam, and G. Soyez, “The anti- kt jet clustering algorithm”, JHEP 04 (2008) 063, arXiv:0802.1189 [hep-ph]

  8. [6]

    FastJet User Manual

    M. Cacciari, G. P. Salam, and G. Soyez, “FastJet User Manual”, Eur . Phys. J. C72 (2012) 1896, arXiv:1111.6097 [hep-ph]

Show all 98 references
  1. [7]

    Particle-yield modification in jet-like azimuthal di-hadron correlations in Pb–Pb collisions at √sNN = 2.76 TeV

    ALICE Collaboration, K. Aamodt et al., “Particle-yield modification in jet-like azimuthal di-hadron correlations in Pb–Pb collisions at √sNN = 2.76 TeV”, Phys. Rev. Lett. 108 (2012) 092301, arXiv:1110.0121 [nucl-ex]

  2. [8]

    Jet-like correlations with neutral pion triggers in pp and central Pb–Pb collisions at √sNN = 2.76 TeV

    ALICE Collaboration, J. Adam et al., “Jet-like correlations with neutral pion triggers in pp and central Pb–Pb collisions at √sNN = 2.76 TeV”, Phys. Lett. B 763 (2016) 238–250, arXiv:1608.07201 [nucl-ex]

  3. [9]

    Measurement of azimuthal correlations of D mesons and charged particles in pp collisions at √s = 7 TeV and p–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, J. Adam et al., “Measurement of azimuthal correlations of D mesons and charged particles in pp collisions at √s = 7 TeV and p–Pb collisions at √sNN = 5.02 TeV”, Eur . Phys. J. C 77 (2017) 245, arXiv:1605.06963 [nucl-ex]

  4. [10]

    Azimuthal correlations of prompt D mesons with charged particles in pp and p–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, S. Acharya et al., “Azimuthal correlations of prompt D mesons with charged particles in pp and p–Pb collisions at √sNN = 5.02 TeV”, Eur . Phys. J. C80 (2020) 979, arXiv:1910.14403 [nucl-ex]

  5. [11]

    Azimuthal correlations of heavy-flavor hadron decay electrons with charged particles in pp and p–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, S. Acharya et al., “Azimuthal correlations of heavy-flavor hadron decay electrons with charged particles in pp and p–Pb collisions at √sNN = 5.02 TeV”, Eur . Phys. J. C83 (2023) 741, arXiv:2303.00591 [nucl-ex]

  6. [12]

    Heavy quark correlations in hadron collisions at next-to-leading order

    M. L. Mangano, P. Nason, and G. Ridolfi, “Heavy quark correlations in hadron collisions at next-to-leading order”, Nucl. Phys. B 373 (1992) 295–345

  7. [13]

    Production and hadronization of heavy quarks

    E. Norrbin and T. Sjostrand, “Production and hadronization of heavy quarks”, Eur . Phys. J. C17 (2000) 137–161, arXiv:hep-ph/0005110. 19 Heavy-flavor decay electron–charged particle correlations in Pb–Pb collisions ALICE Collaboration

  8. [14]

    Horava-Lifshitz early universe phase transition beyond detailed balance

    F. Kheyri, M. Khodadi, and H. R. Sepangi, “Horava-Lifshitz early universe phase transition beyond detailed balance”, Eur . Phys. J. C73 (2013) 2286, arXiv:1301.5460 [gr-qc]

  9. [15]

    The chiral and deconfinement aspects of the QCD transition

    A. Bazavov et al., “The chiral and deconfinement aspects of the QCD transition”, Phys. Rev. D 85 (2012) 054503, arXiv:1111.1710 [hep-lat]

  10. [16]

    The QCD equation of state with dynamical quarks

    S. Borsanyi, G. Endrodi, Z. Fodor, A. Jakovac, S. D. Katz, S. Krieg, C. Ratti, and K. K. Szabo, “The QCD equation of state with dynamical quarks”, JHEP 11 (2010) 077, arXiv:1007.2580 [hep-lat]

  11. [17]

    Chiral crossover in QCD at zero and non-zero chemical potentials

    HotQCD Collaboration, A. Bazavov et al., “Chiral crossover in QCD at zero and non-zero chemical potentials”, Phys. Lett. B 795 (2019) 15–21, arXiv:1812.08235 [hep-lat]

  12. [18]

    Equation of state and QCD transition at finite temperature

    A. Bazavov et al., “Equation of state and QCD transition at finite temperature”, Phys. Rev. D 80 (2009) 014504, arXiv:0903.4379 [hep-lat]

  13. [19]

    First Results from Pb+Pb collisions at the LHC

    B. Muller, J. Schukraft, and B. Wyslouch, “First Results from Pb+Pb collisions at the LHC”, Ann. Rev. Nucl. Part. Sci. 62 (2012) 361–386, arXiv:1202.3233 [hep-ex]

  14. [20]

    The ALICE experiment: a journey through QCD

    ALICE Collaboration, S. Acharya et al., “The ALICE experiment: a journey through QCD”, Eur . Phys. J. C 84 (2024) 813, arXiv:2211.04384 [nucl-ex]

  15. [21]

    Quark gluon plasma and color glass condensate at RHIC? The Perspective from the BRAHMS experiment

    BRAHMS Collaboration, I. Arsene et al., “Quark gluon plasma and color glass condensate at RHIC? The Perspective from the BRAHMS experiment”, Nucl. Phys. A 757 (2005) 1–27, arXiv:nucl-ex/0410020

  16. [22]

    The PHOBOS perspective on discoveries at RHIC

    PHOBOS Collaboration, B. B. Back et al., “The PHOBOS perspective on discoveries at RHIC”, Nucl. Phys. A 757 (2005) 28–101, arXiv:nucl-ex/0410022

  17. [23]

    Experimental and theoretical challenges in the search for the quark gluon plasma: The STAR Collaboration’s critical assessment of the evidence from RHIC collisions

    STAR Collaboration, J. Adams et al., “Experimental and theoretical challenges in the search for the quark gluon plasma: The STAR Collaboration’s critical assessment of the evidence from RHIC collisions”, Nucl. Phys. A 757 (2005) 102–183, arXiv:nucl-ex/0501009

  18. [24]

    Formation of dense partonic matter in relativistic nucleus-nucleus collisions at RHIC: Experimental evaluation by the PHENIX collaboration

    PHENIX Collaboration, K. Adcox et al., “Formation of dense partonic matter in relativistic nucleus-nucleus collisions at RHIC: Experimental evaluation by the PHENIX collaboration”, Nucl. Phys. A 757 (2005) 184–283, arXiv:nucl-ex/0410003

  19. [25]

    Energy loss in perturbative QCD

    R. Baier, D. Schiff, and B. G. Zakharov, “Energy loss in perturbative QCD”, Ann. Rev. Nucl. Part. Sci. 50 (2000) 37–69, arXiv:hep-ph/0002198

  20. [26]

    Heavy quark colorimetry of QCD matter

    Y . L. Dokshitzer and D. E. Kharzeev, “Heavy quark colorimetry of QCD matter”,Phys. Lett. B 519 (2001) 199–206, arXiv:hep-ph/0106202

  21. [27]

    Medium induced gluon radiation off massive quarks fills the dead cone

    N. Armesto, C. A. Salgado, and U. A. Wiedemann, “Medium induced gluon radiation off massive quarks fills the dead cone”, Phys. Rev. D 69 (2004) 114003, arXiv:hep-ph/0312106

  22. [28]

    Heavy quark jet quenching with collisional plus radiative energy loss and path length fluctuations

    S. Wicks, W. Horowitz, M. Djordjevic, and M. Gyulassy, “Heavy quark jet quenching with collisional plus radiative energy loss and path length fluctuations”, Nucl. Phys. A 783 (2007) 493–496, arXiv:nucl-th/0701063

  23. [29]

    Heavy quark energy loss in nuclear medium

    B.-W. Zhang, E. Wang, and X.-N. Wang, “Heavy quark energy loss in nuclear medium”, Phys. Rev. Lett. 93 (2004) 072301, arXiv:nucl-th/0309040

  24. [30]

    Collisional dissociation of heavy mesons in dense QCD matter

    A. Adil and I. Vitev, “Collisional dissociation of heavy mesons in dense QCD matter”, Phys. Lett. B 649 (2007) 139–146, arXiv:hep-ph/0611109. 20 Heavy-flavor decay electron–charged particle correlations in Pb–Pb collisions ALICE Collaboration

  25. [31]

    Jet quenching in high-energy heavy-ion collisions

    G.-Y . Qin and X.-N. Wang, “Jet quenching in high-energy heavy-ion collisions”,Int. J. Mod. Phys. E 24 (2015) 1530014, arXiv:1511.00790 [hep-ph]

  26. [32]

    Angular structure of the in-medium QCD cascade

    J.-P. Blaizot, Y . Mehtar-Tani, and M. A. C. Torres, “Angular structure of the in-medium QCD cascade”, Phys. Rev. Lett. 114 (2015) 222002, arXiv:1407.0326 [hep-ph]

  27. [33]

    Measurement of jet fragmentation in Pb+Pb and pp collisions at √sNN = 5.02 TeV with the ATLAS detector

    ATLAS Collaboration, M. Aaboud et al., “Measurement of jet fragmentation in Pb+Pb and pp collisions at √sNN = 5.02 TeV with the ATLAS detector”,Phys. Rev. C 98 (2018) 024908, arXiv:1805.05424 [nucl-ex]

  28. [34]

    Measurement of Jet Fragmentation in PbPb and pp Collisions at √sNN = 2.76 TeV

    CMS Collaboration, S. Chatrchyan et al., “Measurement of Jet Fragmentation in PbPb and pp Collisions at √sNN = 2.76 TeV”, Phys. Rev. C 90 (2014) 024908, arXiv:1406.0932 [nucl-ex]

  29. [35]

    Medium Response and Jet–Hadron Correlations in Relativistic Heavy-Ion Collisions

    S. Cao and G.-Y . Qin, “Medium Response and Jet–Hadron Correlations in Relativistic Heavy-Ion Collisions”, Ann. Rev. Nucl. Part. Sci. 73 (2023) 205–229, arXiv:2211.16821 [nucl-th]

  30. [36]

    Medium Modifications of Heavy-Flavor Jet Angularities in High-Energy Nuclear Collisions

    Y . Li, S.-Y . Chen, W.-X. Kong, S. Wang, and B.-W. Zhang, “Medium Modifications of Heavy-Flavor Jet Angularities in High-Energy Nuclear Collisions”, Chin. Phys. Lett. 42 (2025) 011201, arXiv:2409.12742 [hep-ph]

  31. [37]

    Energy and momentum deposited into a QCD medium by a jet shower

    G. Y . Qin, A. Majumder, H. Song, and U. Heinz, “Energy and momentum deposited into a QCD medium by a jet shower”, Phys. Rev. Lett. 103 (2009) 152303, arXiv:0903.2255 [nucl-th]

  32. [38]

    Jet Wake from Linearized Hydrodynamics

    J. Casalderrey-Solana, J. G. Milhano, D. Pablos, K. Rajagopal, and X. Yao, “Jet Wake from Linearized Hydrodynamics”, JHEP 05 (2021) 230, arXiv:2010.01140 [hep-ph]

  33. [39]

    Rapidity asymmetry of jet-hadron correlation as a robust signal of diffusion wake induced by di-jets in high-energy heavy-ion collisions

    Z. Yang and X.-N. Wang, “Rapidity asymmetry of jet-hadron correlation as a robust signal of diffusion wake induced by di-jets in high-energy heavy-ion collisions”, arXiv:2501.03419 [hep-ph]

  34. [40]

    3D Structure of Jet-Induced Diffusion Wake in an Expanding Quark-Gluon Plasma

    Z. Yang, T. Luo, W. Chen, L.-G. Pang, and X.-N. Wang, “3D Structure of Jet-Induced Diffusion Wake in an Expanding Quark-Gluon Plasma”, Phys. Rev. Lett. 130 (2023) 052301, arXiv:2203.03683 [hep-ph]

  35. [41]

    The Signals of Jet-induced Diffusion Wake on Z/γ-hadron Correlations in High-Energy Heavy-Ion Collisions

    W. Chen, Z. Yang, L. Pang, Y . He, T. Luo, and X. N. Wang, “The Signals of Jet-induced Diffusion Wake on Z/γ-hadron Correlations in High-Energy Heavy-Ion Collisions”, Acta Phys. Polon. Supp. 16 (2023) 1–A53

  36. [42]

    The Charm and beauty of RHIC and LHC

    M. Djordjevic, M. Gyulassy, and S. Wicks, “The Charm and beauty of RHIC and LHC”, Phys. Rev. Lett. 94 (2005) 112301, arXiv:hep-ph/0410372

  37. [43]

    Measurements of low-pT electrons from semileptonic heavy-flavour hadron decays at mid-rapidity in pp and Pb–Pb collisions at √sNN = 2.76 TeV

    ALICE Collaboration, S. Acharya et al., “Measurements of low-pT electrons from semileptonic heavy-flavour hadron decays at mid-rapidity in pp and Pb–Pb collisions at √sNN = 2.76 TeV”, JHEP 10 (2018) 061, arXiv:1805.04379 [nucl-ex]

  38. [44]

    Measurement of D0, D+, D∗+ and D+ s production in Pb–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, S. Acharya et al., “Measurement of D0, D+, D∗+ and D+ s production in Pb–Pb collisions at √sNN = 5.02 TeV”, JHEP 10 (2018) 174, arXiv:1804.09083 [nucl-ex]

  39. [45]

    Suppression of high transverse momentum D mesons in central Pb–Pb collisions at √sNN = 2.76 TeV

    ALICE Collaboration, B. Abelev et al., “Suppression of high transverse momentum D mesons in central Pb–Pb collisions at √sNN = 2.76 TeV”, JHEP 09 (2012) 112, arXiv:1203.2160 [nucl-ex]

  40. [46]

    Nuclear modification factor of D0 mesons in PbPb collisions at √sNN = 5.02 TeV

    CMS Collaboration, A. M. Sirunyan et al., “Nuclear modification factor of D0 mesons in PbPb collisions at √sNN = 5.02 TeV”, Phys. Lett. B 782 (2018) 474–496, arXiv:1708.04962 [nucl-ex]. 21 Heavy-flavor decay electron–charged particle correlations in Pb–Pb collisions ALICE Coll...

  41. [47]

    Measurement of beauty production via non-prompt D0 mesons in Pb–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, S. Acharya et al., “Measurement of beauty production via non-prompt D0 mesons in Pb–Pb collisions at √sNN = 5.02 TeV”, JHEP 12 (2022) 126, arXiv:2202.00815 [nucl-ex]

  42. [48]

    Measurement of electrons from beauty-hadron decays in pp and Pb–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, S. Acharya et al., “Measurement of electrons from beauty-hadron decays in pp and Pb–Pb collisions at √sNN = 5.02 TeV”, Phys. Rev. C 108 (2023) 034906, arXiv:2211.13985 [nucl-ex]

  43. [50]

    Evidence of b-Jet Quenching in PbPb Collisions at√sNN = 2.76 TeV

    CMS Collaboration, S. Chatrchyan et al., “Evidence of b-Jet Quenching in PbPb Collisions at√sNN = 2.76 TeV”, Phys. Rev. Lett. 113 (2014) 132301, arXiv:1312.4198 [nucl-ex] . [Erratum: Phys.Rev.Lett. 115, 029903 (2015)]

  44. [51]

    Measurement of the nuclear modification factor of b-jets in 5.02 TeV Pb+Pb collisions with the ATLAS detector

    ATLAS Collaboration, G. Aad et al., “Measurement of the nuclear modification factor of b-jets in 5.02 TeV Pb+Pb collisions with the ATLAS detector”,Eur . Phys. J. C83 (2023) 438, arXiv:2204.13530 [nucl-ex]

  45. [52]

    Search for medium effects using jets from bottom quarks in PbPb collisions at √sNN = 5.02 TeV

    CMS Collaboration, A. Tumasyan et al., “Search for medium effects using jets from bottom quarks in PbPb collisions at √sNN = 5.02 TeV”, Phys. Lett. B 844 (2023) 137849, arXiv:2210.08547 [hep-ex]

  46. [53]

    Jet-like correlations with respect to K0 S and Λ ( ¯Λ) in pp and Pb–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, S. Acharya et al., “Jet-like correlations with respect to K0 S and Λ ( ¯Λ) in pp and Pb–Pb collisions at √sNN = 5.02 TeV”, Eur . Phys. J. C83 (2023) 497, arXiv:2211.01197 [nucl-ex]

  47. [54]

    Measurements of jet quenching using semi-inclusive hadron+jet distributions in pp and central Pb-Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, S. Acharya et al., “Measurements of jet quenching using semi-inclusive hadron+jet distributions in pp and central Pb-Pb collisions at √sNN = 5.02 TeV”, Phys. Rev. C 110 (2024) 014906, arXiv:2308.16128 [nucl-ex]

  48. [55]

    Observation of Medium-Induced Yield Enhancement and Acoplanarity Broadening of Low-pT Jets from Measurements in pp and Central Pb-Pb Collisions at √sNN = 5.02 TeV

    ALICE Collaboration, S. Acharya et al., “Observation of Medium-Induced Yield Enhancement and Acoplanarity Broadening of Low-pT Jets from Measurements in pp and Central Pb-Pb Collisions at √sNN = 5.02 TeV”, Phys. Rev. Lett. 133 (2024) 022301, arXiv:2308.16131 [nucl-ex]

  49. [56]

    A Hybrid Strong/Weak Coupling Approach to Jet Quenching

    J. Casalderrey-Solana, D. C. Gulhan, J. G. Milhano, D. Pablos, and K. Rajagopal, “A Hybrid Strong/Weak Coupling Approach to Jet Quenching”, JHEP 10 (2014) 019, arXiv:1405.3864 [hep-ph]. [Erratum: JHEP 09, 175 (2015)]

  50. [57]

    Azimuthal correlations of electrons from heavy-flavor decay with hadrons in p+p and Au+Au collisions at √sNN = 200 GeV

    PHENIX Collaboration, A. Adare et al., “Azimuthal correlations of electrons from heavy-flavor decay with hadrons in p+p and Au+Au collisions at √sNN = 200 GeV”, Phys. Rev. C 83 (2011) 044912, arXiv:1011.1477 [nucl-ex]

  51. [58]

    Measurement of D0-meson + hadron two-dimensional angular correlations in Au+Au collisions at √sNN = 200 GeV

    STAR Collaboration, J. Adam et al., “Measurement of D0-meson + hadron two-dimensional angular correlations in Au+Au collisions at √sNN = 200 GeV”, Phys. Rev. C 102 (2020) 014905, arXiv:1911.12168 [nucl-ex]

  52. [59]

    Performance of the ALICE Experiment at the CERN LHC

    ALICE Collaboration, B. B. Abelev et al., “Performance of the ALICE Experiment at the CERN LHC”, Int. J. Mod. Phys. A 29 (2014) 1430044, arXiv:1402.4476 [nucl-ex]

  53. [60]

    The ALICE experiment at the CERN LHC

    ALICE Collaboration, K. Aamodt et al., “The ALICE experiment at the CERN LHC”, JINST 3 (2008) S08002. 22 Heavy-flavor decay electron–charged particle correlations in Pb–Pb collisions ALICE Collaboration

  54. [61]

    Alignment of the ALICE Inner Tracking System with cosmic-ray tracks

    ALICE Collaboration, K. Aamodt et al., “Alignment of the ALICE Inner Tracking System with cosmic-ray tracks”, JINST 5 (2010) P03003, arXiv:1001.0502 [physics.ins-det]

  55. [62]

    The ALICE TPC, a large 3-dimensional tracking device with fast readout for ultra-high multiplicity events

    J. Alme et al., “The ALICE TPC, a large 3-dimensional tracking device with fast readout for ultra-high multiplicity events”, Nucl. Instrum. Meth. A 622 (2010) 316–367, arXiv:1001.1950 [physics.ins-det]

  56. [63]

    Theory of the Passage of Fast Corpuscular Rays Through Matter

    H. Bethe, “Theory of the Passage of Fast Corpuscular Rays Through Matter”, Annalen Phys. 5 (1930) 325–400

  57. [64]

    Performance of the ALEPH detector at LEP

    ALEPH Collaboration, D. Buskulic et al., “Performance of the ALEPH detector at LEP”, Nucl. Instrum. Meth. A 360 (1995) 481–506

  58. [65]

    Calibration of the ALEPH dE/dx

    ALEPH Collaboration, R. Assmann et al., “Calibration of the ALEPH dE/dx”, ALEPH 94-116, PHYSIC 94-089. CERN Document Server

  59. [66]

    ALICE Electromagnetic Calorimeter Technical Design Report

    ALICE Collaboration, P. Cortese et al., “ALICE Electromagnetic Calorimeter Technical Design Report”, CERN-LHCC-2008-014

  60. [67]

    ALICE DCal: An Addendum to the EMCal Technical Design Report Di-Jet and Hadron-Jet correlation measurements in ALICE

    ALICE Collaboration, J. Allen et al., “ALICE DCal: An Addendum to the EMCal Technical Design Report Di-Jet and Hadron-Jet correlation measurements in ALICE”, CERN-LHCC-2010-011, ALICE-TDR-14-add-1

  61. [68]

    Performance of the ALICE VZERO system

    ALICE Collaboration, E. Abbas et al., “Performance of the ALICE VZERO system”, JINST 8 (2013) P10016, arXiv:1306.3130 [nucl-ex]

  62. [69]

    Performance of the ALICE Zero Degree Calorimeters and upgrade strategy

    ALICE Collaboration, P. Cortese, “Performance of the ALICE Zero Degree Calorimeters and upgrade strategy”, J. Phys. Conf. Ser .1162 (2019) 012006

  63. [70]

    Centrality determination in heavy ion collisions

    ALICE Collaboration, S. Acharya et al., “Centrality determination in heavy ion collisions”, ALICE-PUBLIC-2018-011

  64. [71]

    Review of particle physics

    Particle Data Group Collaboration, S. Navas et al., “Review of particle physics”, Phys. Rev. D 110 (2024) 030001

  65. [72]

    The ALICE definition of primary particles

    ALICE Collaboration, S. Acharya et al., “The ALICE definition of primary particles”, ALICE-PUBLIC-2017-005

  66. [73]

    Measurement of electrons from semileptonic heavy-flavour hadron decays at midrapidity in pp and Pb–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, S. Acharya et al., “Measurement of electrons from semileptonic heavy-flavour hadron decays at midrapidity in pp and Pb–Pb collisions at √sNN = 5.02 TeV”, Phys. Lett. B 804 (2020) 135377, arXiv:1910.09110 [nucl-ex]

  67. [74]

    Performance of the ALICE Electromagnetic Calorimeter

    ALICE Collaboration, S. Acharya et al., “Performance of the ALICE Electromagnetic Calorimeter”, JINST 18 (2023) P08007, arXiv:2209.04216 [physics.ins-det]

  68. [75]

    A simple method of shower localization and identification in laterally segmented calorimeters

    T. Awes, F. Obenshain, F. Plasil, S. Saini, S. Sorensen, and G. Young, “A simple method of shower localization and identification in laterally segmented calorimeters”, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Ass...

  69. [76]

    Long-range angular correlations of π, K and p in p–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, B. B. Abelev et al., “Long-range angular correlations of π, K and p in p–Pb collisions at √sNN = 5.02 TeV”, Phys. Lett. B 726 (2013) 164–177, arXiv:1307.3237 [nucl-ex]

  70. [77]

    Measurement of electrons from heavy-flavour hadron decays as a function of multiplicity in p–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, S. Acharya et al., “Measurement of electrons from heavy-flavour hadron decays as a function of multiplicity in p–Pb collisions at √sNN = 5.02 TeV”, JHEP 02 (2020) 077, arXiv:1910.14399 [nucl-ex] . 23 Heavy-flavor decay electron–charged particle correlation...

  71. [78]

    Measurement of the production of high-pT electrons from heavy-flavour hadron decays in Pb–Pb collisions at √sNN = 2.76 TeV

    ALICE Collaboration, J. Adam et al., “Measurement of the production of high-pT electrons from heavy-flavour hadron decays in Pb–Pb collisions at √sNN = 2.76 TeV”, Phys. Lett. B 771 (2017) 467–481, arXiv:1609.07104 [nucl-ex]

  72. [79]

    Measurement of electrons from heavy-flavour hadron decays in p–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, J. Adam et al., “Measurement of electrons from heavy-flavour hadron decays in p–Pb collisions at √sNN = 5.02 TeV”, Phys. Lett. B 754 (2016) 81–93, arXiv:1509.07491 [nucl-ex]

  73. [80]

    HIJING: A Monte Carlo model for multiple jet production in pp, pA and AA collisions

    X.-N. Wang and M. Gyulassy, “HIJING: A Monte Carlo model for multiple jet production in pp, pA and AA collisions”, Phys. Rev. D 44 (1991) 3501–3516

  74. [81]

    GEANT Detector Description and Simulation Tool

    R. Brun, F. Bruyant, F. Carminati, S. Giani, M. Maire, A. McPherson, G. Patrick, and L. Urban, “GEANT Detector Description and Simulation Tool”, CERN-W5013, CERN-W-5013, W5013, W-5013

  75. [82]

    PYTHIA 6.4 Physics and Manual

    T. Sjostrand, S. Mrenna, and P. Z. Skands, “PYTHIA 6.4 Physics and Manual”, JHEP 05 (2006) 026, arXiv:hep-ph/0603175

  76. [83]

    Measurement of electrons from semileptonic heavy-flavour hadron decays in pp collisions at √s = 7 TeV

    ALICE Collaboration, B. Abelev et al., “Measurement of electrons from semileptonic heavy-flavour hadron decays in pp collisions at √s = 7 TeV”, Phys. Rev. D 86 (2012) 112007, arXiv:1205.5423 [hep-ex]

  77. [84]

    Harmonic decomposition of two-particle angular correlations in Pb–Pb collisions at √sNN = 2.76 TeV

    ALICE Collaboration, K. Aamodt et al., “Harmonic decomposition of two-particle angular correlations in Pb–Pb collisions at √sNN = 2.76 TeV”, Phys. Lett. B 708 (2012) 249–264, arXiv:1109.2501 [nucl-ex]

  78. [86]

    Energy dependence and fluctuations of anisotropic flow in Pb–Pb collisions at √sNN = 5.02 and 2.76 TeV

    ALICE Collaboration, S. Acharya et al., “Energy dependence and fluctuations of anisotropic flow in Pb–Pb collisions at √sNN = 5.02 and 2.76 TeV”, JHEP 07 (2018) 103, arXiv:1804.02944 [nucl-ex]

  79. [87]

    Transverse momentum spectra and nuclear modification factors of charged particles in pp, p–Pb and Pb–Pb collisions at the LHC

    ALICE Collaboration, S. Acharya et al., “Transverse momentum spectra and nuclear modification factors of charged particles in pp, p–Pb and Pb–Pb collisions at the LHC”, JHEP 11 (2018) 013, arXiv:1802.09145 [nucl-ex]

  80. [88]

    Dispersion on a sphere

    R. A. Fisher, “Dispersion on a sphere”, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences 217 (1953) 295–305

  81. [89]

    Large angle hadron correlations from medium-induced gluon radiation

    I. Vitev, “Large angle hadron correlations from medium-induced gluon radiation”, Phys. Lett. B 630 (2005) 78–84, arXiv:hep-ph/0501255

  82. [90]

    Dihadron azimuthal correlations in Au+Au collisions at√sNN = 200 GeV

    PHENIX Collaboration, A. Adare et al., “Dihadron azimuthal correlations in Au+Au collisions at√sNN = 200 GeV”, Phys. Rev. C 78 (2008) 014901, arXiv:0801.4545 [nucl-ex]

  83. [91]

    High pT tomography of d + Au and Au+Au at SPS, RHIC, and LHC

    I. Vitev and M. Gyulassy, “High pT tomography of d + Au and Au+Au at SPS, RHIC, and LHC”, Phys. Rev. Lett. 89 (2002) 252301, arXiv:hep-ph/0209161

  84. [92]

    Cronin effect in hadron production off nuclei

    B. Z. Kopeliovich, J. Nemchik, A. Schafer, and A. V . Tarasov, “Cronin effect in hadron production off nuclei”, Phys. Rev. Lett. 88 (2002) 232303, arXiv:hep-ph/0201010

  85. [93]

    Systematic study of high pT hadron spectra in pp, p A and A A collisions from SPS to RHIC energies

    X.-N. Wang, “Systematic study of high pT hadron spectra in pp, p A and A A collisions from SPS to RHIC energies”, Phys. Rev. C 61 (2000) 064910, arXiv:nucl-th/9812021. 24 Heavy-flavor decay electron–charged particle correlations in Pb–Pb collisions ALICE Collaboration

  86. [94]

    Jets, Mach cone, hot spots, ridges, harmonic flow, dihadron and γ-hadron correlation in high-energy heavy-ion collisions

    G.-L. Ma and X.-N. Wang, “Jets, Mach cone, hot spots, ridges, harmonic flow, dihadron and γ-hadron correlation in high-energy heavy-ion collisions”, Phys. Rev. Lett. 106 (2011) 162301, arXiv:1011.5249 [nucl-th]

  87. [95]

    Beauty production in pp collisions at √s = 2.76 TeV measured via semi-electronic decays

    ALICE Collaboration, B. B. Abelev et al., “Beauty production in pp collisions at √s = 2.76 TeV measured via semi-electronic decays”, Phys. Lett. B 738 (2014) 97–108, arXiv:1405.4144 [nucl-ex]

  88. [96]

    Theoretical predictions for charm and bottom production at the LHC

    M. Cacciari, S. Frixione, N. Houdeau, M. L. Mangano, P. Nason, and G. Ridolfi, “Theoretical predictions for charm and bottom production at the LHC”, JHEP 10 (2012) 137, arXiv:1205.6344 [hep-ph]

  89. [97]

    Prompt D0, D+, and D∗+ production in Pb–Pb collisions at √sNN = 5.02 TeV

    ALICE Collaboration, S. Acharya et al., “Prompt D0, D+, and D∗+ production in Pb–Pb collisions at √sNN = 5.02 TeV”, JHEP 01 (2022) 174, arXiv:2110.09420 [nucl-ex]

  90. [98]

    ALICE upgrades during the LHC Long Shutdown 2

    ALICE Collaboration, S. Acharya et al., “ALICE upgrades during the LHC Long Shutdown 2”, JINST 19 (2024) P05062, arXiv:2302.01238 [physics.ins-det] . 25 Heavy-flavor decay electron–charged particle correlations in Pb–Pb collisions ALICE Collaboration A Supplemental Figures 1 −...

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