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CMS-PAS-FTR-17-002
Projected heavy ion physics performance at the High Luminosity LHC era with the CMS detector
Abstract: In this note, the projected performance of heavy ion physics in the HL-LHC era with the CMS detector is presented. The results are based on data from the pp, pPb and PbPb data taken between 2010 and 2016. The extrapolated performance with PbPb data corresponding to a total integrated luminosity of 10 nb$^{-1}$ at $\sqrt{s_{\rm NN}}= $ 5.02 TeV shows a dramatic improvement in the accuracy of a number of selected measurements using jets, quarkonia, and identified heavy flavor hadrons.
Figures Summary References CMS Publications
Figures

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Figure 1:
Nuclear modification factors of charged particles, $\mathrm{D}^0$, $\mathrm{B}^{+}$ and nonprompt $\mathrm{J}/\psi $ with the PbPb statistics expected with 10 nb$^{-1}$.

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Figure 2:
$v_2$ of charged particles, $\mathrm{D}^0$ with the PbPb statistics expected with 10 nb$^{-1}$ compared to theoretical predictons of $\mathrm{D}^0$ $v_2$.

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Figure 3:
(Left Panel) $X_{j\gamma}$ distribution for isolated-photon+jets of $p_{\gamma} > $ 100 GeV/$c$ and $|\eta _{\gamma}| < $ 1.44, $p_{\rm jet} > $ 30 GeV/$c$ and $|\eta _{\rm jet}| < $ 1.6 in the HL-LHC data (Right Panel) Comparison between the current performance with 0.4 nb$^{-1}$ of PbPb data collected in 2015 and with HL-LHC data.

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Figure 3-a:
$X_{j\gamma}$ distribution for isolated-photon+jets of $p_{\gamma} > $ 100 GeV/$c$ and $|\eta _{\gamma}| < $ 1.44, $p_{\rm jet} > $ 30 GeV/$c$ and $|\eta _{\rm jet}| < $ 1.6 in the HL-LHC data.

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Figure 3-b:
Comparison between the current performance with 0.4 nb$^{-1}$ of PbPb data collected in 2015 and with HL-LHC data.

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Figure 4:
(Left Panel) $X_{jZ}$ distribution for isolated-photon+jets of $p_{Z}$ > 100 GeV/$c$, $p_{\rm jet} > $ 30 GeV/$c$ and $|\eta _{\rm jet}| < $ 1.6 in the HL-LHC data (Right Panel) Comparison between the current performance with 0.4 nb$^{-1}$ of PbPb data collected in 2015 and with HL-LHC data.

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Figure 4-a:
$X_{jZ}$ distribution for isolated-photon+jets of $p_{Z}$ > 100 GeV/$c$, $p_{\rm jet} > $ 30 GeV/$c$ and $|\eta _{\rm jet}| < $ 1.6 in the HL-LHC data.

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Figure 4-b:
Comparison between the current performance with 0.4 nb$^{-1}$ of PbPb data collected in 2015 and with HL-LHC data.

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Figure 5:
Performance of jet splitting function measurement with HL-LHC data in PbPb collisions

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Figure 6:
Jet Mass distribution with grooming setting $(z_{cut},\beta)=(0.1,0.0)$ (Upper plots) and $(z_{cut},\beta)=(0.5,1.5)$ (Lower plots)

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Figure 6-a:
Jet Mass distribution with grooming setting $(z_{cut},\beta)=(0.1,0.0)$.

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Figure 6-b:
Jet Mass distribution with grooming setting $(z_{cut},\beta)=(0.5,1.5)$.

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Figure 7:
(Photon-tagged fragmentation function in the HL-LHC data (Left Panel) Comparison between the current performance with 0.4 nb$^{-1}$ of PbPb data collected in 2015 and with HL-LHC data. (Right Panel)

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Figure 7-a:
Photon-tagged fragmentation function in the HL-LHC data.

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Figure 7-b:
Comparison between the current performance with 0.4 nb$^{-1}$ of PbPb data collected in 2015 and with HL-LHC data.

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Figure 8:
(Left panel) Dimuon mass distribution in the charmonia mass region (Right panel) Performance of upsilon nuclear modification factors

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Figure 8-a:
Dimuon mass distribution in the charmonia mass region.

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Figure 8-b:
Performance of upsilon nuclear modification factors.

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Figure 9:
Forward-backward asymmetry of the W boson production in proton-lead collisions at the HL-LHC
Summary
References
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