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CMS-PAS-FTR-18-033
Study of the expected sensitivity to the P5 parameter in the B0K0μ+μ decay at the HL-LHC
Abstract: The expected sensitivity to the P5 parameter in B0K0μ+μ decays from an integrated luminosity of 300 and 3000 fb1 of pp collisions at a center-of-mass energy of 14 TeV at the HL-LHC is presented. Angular observables in the B0K0μ+μ decay, such as the P5 parameter, are of particular interest as their theoretical predictions are less affected by hadronic uncertainties. With an integrated luminosity of 3000 fb1, the uncertainties on the shape of the P5 parameter will improve by up to a factor of 15, depending on the dimuon mass squared region, compared to the published results from 20 fb1 at 8 TeV.
Figures Summary References CMS Publications
Figures

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Figure 1:
Left: the K+πμ+μ invariant mass distribution for bin 2 from Run I (black diamonds) and Phase-2 (red circles) simulation. A fit with the sum of two Gaussian functions is superimposed to each distribution. Right: the B0 signal width for each q2 bin in the Run I and Phase-2 simulations.

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Figure 1-a:
The K+πμ+μ invariant mass distribution for bin 2 from Run I (black diamonds) and Phase-2 (red circles) simulation. A fit with the sum of two Gaussian functions is superimposed to each distribution.

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Figure 1-b:
The B0 signal width for each q2 bin in the Run I and Phase-2 simulations.

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Figure 2:
Projected statistical (hatched regions) and total (open boxes) uncertainties on the P5 parameter versus q2 in the Phase-2 scenario with an integrated luminosity of 300 fb1. The CMS Run I measurement of P5 is shown by circles with inner vertical bars representing the statistical uncertainties and outer vertical bars representing the total uncertainties. The vertical shaded regions correspond to the J/ψ and ψ resonances.

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Figure 3:
Projected statistical (hatched regions) and total (open boxes) uncertainties on the P5 parameter versus q2 in the Phase-2 scenario with an integrated luminosity of 3000 fb1. The CMS Run I measurement of P5 is shown by circles with inner vertical bars representing the statistical uncertainties and outer vertical bars representing the total uncertainties. The vertical shaded regions correspond to the J/ψ and ψ resonances. The two lower pads represent the statistical (upper pad) and total (lower pad) uncertainties with the finer q2 binning.
Summary
The large amount of data expected from the HL-LHC will allow CMS to investigate rare B physics decay channels and, in particular, precisely measure the P5 parameter shape in the B0K0μ+μ mode through an angular analysis. With the large data set of 3000 fb1, corresponding to around 700K fully reconstructed B0K0μ+μ events, the P5 uncertainties in the q2 bins are estimated to improve by up to a factor of 15 compared to the CMS measurement from 20 fb1 of 8 TeV data. We also studied the possibility to perform the analysis of the angular observables in narrower q2 bins, as a better determination of the P5 parameter shape will allow significant tests for both beyond Standard Model physics and between different Standard Model calculations. The future sensitivity of the P5 angular variable has been presented, however it is worth mentioning that, with the foreseen HL-LHC high statistics, CMS will have the capability to perform a full angular analysis of the B0K0μ+μ decay mode.
References
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