| CMS-PAS-HIN-25-013 | ||
| Study of the charm-quark dead cone in heavy-ion collisions | ||
| CMS Collaboration | ||
| 2026-07-06 | ||
| Abstract: This note presents the first measurement of the dead-cone effect for the charm quark in heavy-ion collisions. PbPb data recorded by the CMS detector at the CERN LHC in 2018 is used. The data correspond to a center-of-mass energy of 5.02 TeV and to an integrated luminosity of 1.7 $ \mathrm{nb}^{-1} $. The observable under study is the angular distribution of hard, collinear intrajet emissions from inclusive and prompt $ \mathrm{D}^0 $- meson-tagged jets in heavy-ion collisions. The emissions are selected by the late-$ k_\mathrm{T} $ grooming algorithm. The angular distribution of late-$ k_\mathrm{T} $ emissions in heavy ions is shifted towards large angles in $ \mathrm{D}^0 $-jets compared to inclusive jets. This is consistent with a suppression of collinear splittings for $ \mathrm{D}^0 $-jets as expected from the dead-cone effect. The shift is consistent with that observed in a previous measurement in pp collisions. This indicates that, within uncertainties, and within the kinematic region covered by the analysis, the dead cone of the charm quark is not filled by quark-gluon-plasma-induced radiation in heavy-ion collisions. | ||
| Links: CDS record (PDF) ; Physics Briefing ; CADI line (restricted) ; | ||
| Figures | |
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Figure 1:
Left: invariant mass distribution of K$ \pi $ pairs for $ \mathrm{D^0} $ jet candidates and fit (red line) for jets with momentum 100 $ \leq p_{\mathrm{T}}^{\text{jet}} < $ 120 GeV and late-$ k_{\mathrm{T}} $ splitting angle 2 $ \leq \ln(1/\theta_{\text{l}}) < $ 2.3. The different components of the fit are the signal (orange-shaded area), K$ \pi $ swaps (green-shaded area), KK and $ \pi\pi $ (gray- and yellow-shaded areas), combinatorial background (blue line), and the non-signal (pink line) fit component, taking into account all the different background sources just mentioned. Right: splitting angle distribution for D$ ^0 $ meson-tagged jets (black points), and the prompt component (red points) after the non-prompt component (cyan-shaded area) subtraction, as well as the untagged fraction of jets not satisfying late-$ k_{\mathrm{T}} $ groomer, in 100 $ \le p_{\mathrm{T}}^{\text{jet}} < $ 120 GeV. |
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Figure 1-a:
Left: invariant mass distribution of K$ \pi $ pairs for $ \mathrm{D^0} $ jet candidates and fit (red line) for jets with momentum 100 $ \leq p_{\mathrm{T}}^{\text{jet}} < $ 120 GeV and late-$ k_{\mathrm{T}} $ splitting angle 2 $ \leq \ln(1/\theta_{\text{l}}) < $ 2.3. The different components of the fit are the signal (orange-shaded area), K$ \pi $ swaps (green-shaded area), KK and $ \pi\pi $ (gray- and yellow-shaded areas), combinatorial background (blue line), and the non-signal (pink line) fit component, taking into account all the different background sources just mentioned. Right: splitting angle distribution for D$ ^0 $ meson-tagged jets (black points), and the prompt component (red points) after the non-prompt component (cyan-shaded area) subtraction, as well as the untagged fraction of jets not satisfying late-$ k_{\mathrm{T}} $ groomer, in 100 $ \le p_{\mathrm{T}}^{\text{jet}} < $ 120 GeV. |
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Figure 1-b:
Left: invariant mass distribution of K$ \pi $ pairs for $ \mathrm{D^0} $ jet candidates and fit (red line) for jets with momentum 100 $ \leq p_{\mathrm{T}}^{\text{jet}} < $ 120 GeV and late-$ k_{\mathrm{T}} $ splitting angle 2 $ \leq \ln(1/\theta_{\text{l}}) < $ 2.3. The different components of the fit are the signal (orange-shaded area), K$ \pi $ swaps (green-shaded area), KK and $ \pi\pi $ (gray- and yellow-shaded areas), combinatorial background (blue line), and the non-signal (pink line) fit component, taking into account all the different background sources just mentioned. Right: splitting angle distribution for D$ ^0 $ meson-tagged jets (black points), and the prompt component (red points) after the non-prompt component (cyan-shaded area) subtraction, as well as the untagged fraction of jets not satisfying late-$ k_{\mathrm{T}} $ groomer, in 100 $ \le p_{\mathrm{T}}^{\text{jet}} < $ 120 GeV. |
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Figure 2:
Upper panel: late-$ k_{\mathrm{T}} $ angular distribution for Prompt-$ \mathrm{D^0} $ mesons in jets (red line) and inclusive jets (cyan line). Middle panel: ratio prompt $ D $ meson-tagged to inclusive jets in PbPb collisions (blue line), ratio prompt $ \mathrm{D^0} $ meson-tagged to inclusive jets in proton-proton collisions (purple line), and quenched models predictions for the ratio with diffusion effects -- orange-shaded area, and the vacuum prediction -- green-shaded area of Hybrid model, and LIDO medium -- dark-blue-shaded area and vacuum -- red-shaded area. Lower panel: PbPb-to-pp double ratio. The ratio is consistent with unity within uncertainties, indicating no significant modification of the suppression of small-angle emissions in PbPb collisions, this suggests that the dead cone is intact in PbPb collisions as predicted by theory. The fraction of late-$ k_{\mathrm{T}} $ untagged jets, for $ \mathrm{D^0} $ meson-tagged jets is about 22% and for inclusive jets is about 16%. |
| Tables | |
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Table 1:
Summary of systematic uncertainties (relative) in each bin of $ \ln(1/\theta_{l}) $ in percent for prompt $ \mathrm{D}^0 $-tagged jets. |
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Table 2:
Summary of systematic uncertainties (relative) in each bin of $ \ln(1/\theta_{l}) $ in percent for Inclusive jets. |
| Summary |
| This note presents the first measurement of the dead-cone effect for charm quarks in heavy-ion collisions. Jet substructure techniques allow inspection of the jet radiation pattern and enhance sensitivity to quark mass effects, compared with measurements that treat jets as monolithic objects. This enables measurements of mass effects even for quarks with masses as small as that of the charm quark, and for high-energy jets. The angular distribution of hard, collinear emissions selected by the late-$ k_{\mathrm{T}} $ grooming algorithm is measured for inclusive and prompt $ \mathrm{D^0} $-tagged jets. Compared to inclusive jets, $ \mathrm{D^0} $-jets exhibit a suppression of small-angle emissions, consistent with the expected dead-cone effect. The observed angular distribution is compatible with the corresponding measurement in pp collisions, yielding a double ratio consistent with unity within uncertainties. These results provide no evidence that the quark-gluon plasma modifies the suppression of radiation in the charm dead-cone region within the kinematic reach and experimental precision of this measurement. |
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