-
To determine the yields of
$W^+$ and Z candidates, the pseudomass is used. Similarly to the one used in Ref. [37], it is defined as$ \begin{equation} m({M\gamma}) = \sqrt{2p^Mp_{\mathrm{T}}^M\frac{p^{\gamma}}{p_{\mathrm{T}}^{\gamma}}(1-\cos\theta)}, \end{equation} $
(1) where
$ p^M $ and$ p_T^M $ are the momenta and transverse momenta of the meson,$ p^{\gamma} $ and$ p_T^{\gamma} $ are the momenta and transverse momenta of the photon, and θ is the opening angle between the meson and the photon. The pseudomass is an approximation of the invariant mass in which the photon energy, which is poorly measured for transverse energies above the saturation value, is cancelled, resulting in more than 5% improvement on the expected upper limit. The selected$W^{+} \rightarrow D_s^{+} \gamma$ candidates with pseudomass between 35 and 120$\; {\rm{GeV}}/c^2$ , and the selected$Z \rightarrow D^0 \gamma$ candidates with pseudomass between 50 and 125$\; {\rm{GeV}}/c^2$ are used in the yield determination. An extended maximum-likelihood method is adopted, with the finite template statistics accounted for, according to Ref. [38]. Upper limits on the signal yields are determined with the$ CL_S $ method [39, 40], using the candidate pseudomass and${p_{\rm{T}}}$ distributions, and their correlations. The upper limits are calculated at 95% confidence level (C.L.), with the asymptotic$ CL_S $ method in the$\mathrm{RooStats}$ framework [41, 42] taking into account systematic uncertainties.The signal shapes are determined from simulation after event selection. The background shape is estimated using a background-dominated sample, following a data-driven method used previously by the ATLAS collaboration [11, 43]. The background-dominated data sample is selected using candidates in the meson invariant mass sideband, with the requirement on the meson
${p_{\rm{T}}}$ changed from 20$\; {\rm{GeV}}/c$ to 15$\; {\rm{GeV}}/c$ . Since the${D^0}$ lower mass sideband region contains background contributions from partially reconstructed decays (such as$D_s^{+} \rightarrow K^{+} K^{-} \pi^{+}$ with a missing$K^+$ and${D^0}\rightarrow K^{+}\pi^{+}\pi^{0}$ with a missing${\pi ^{\rm{0}}}$ ), the upper sideband region is selected$ [1.91,2.00] $ $\; {\rm{GeV}}/c^2$ for the$Z \rightarrow D^0 \gamma$ background study. For$D_s^{+}$ candidates, both lower$ [1.90,\; 1.94] $ $\; {\rm{GeV}}/c^2$ and upper$ [2.00,\; 2.05] $ $\; {\rm{GeV}}/c^2$ sideband regions are used. Probability density functions (PDFs) are used to model the distributions of the selected background events, and correlations between different variables are taken into account using Gaussian kernel density estimation (KDE) [44]. Pseudodata candidates are generated, from which the background shape in the discriminating variable is derived. The ensemble of pseudodata candidates is produced by randomly sampling distributions of the relevant kinematic variables. These candidates are described by meson and photon four-momentum vectors:● The meson four-momentum vector is constructed from its pseudorapidity (
$ \eta _M $ ), azimuthal angle ($ \phi_M $ ), mass ($ m_M $ ), and transverse momentum ($ p_{\mathrm{T}}^M $ ).● For the photon four-momentum vector, the
$p_{\rm T}^{\gamma}$ of the selected photon candidate is used, while the photon pseudorapidity,$ \eta _\gamma $ , and azimuthal angle,$ \phi_\gamma $ , are determined from the sampled$ \Delta \eta (M,\gamma) $ and$ \Delta\phi(M,\gamma) $ values, where$ \Delta \eta (M,\gamma) $ and$ \Delta\phi(M,\gamma) $ are the differences in η and ϕ between the meson and the photon.The correlations among these kinematic variables in background events are retained in the generation of the pseudodata through the following sampling scheme:
● The
$ \eta _M $ ,$ \phi_M $ ,$ m_M $ , and$p_{\rm T}^M$ values are drawn randomly and independently according to the corresponding PDFs using the meson sideband data events. In the background-dominated data samples, the correlations between these variables are found to be negligible, therefore the variables are assumed to be uncorrelated.● The distributions of
$p_{\rm T}^{\gamma}$ ,$ \Delta\phi(M,\gamma) $ and$ \Delta \eta (M,\gamma) $ are parameterised in bins of$p_{\rm T}^M$ , and values are drawn from the distributions of the bin corresponding to the previously generated$p_{\rm T}^M$ value.Pseudodata candidates that pass the standard selection are used to construct two-dimensional template distributions of pseudomass and
${p_{\rm{T}}}$ .The distributions of pseudomass and
${p_{\rm{T}}}$ for the signal candidates, overlaid with the signal and background models, are shown in Fig. 3. With no visible signal contribution, upper limits on the relative and absolute branching fractions are calculated.Figure 3. (color online) Distributions of (left) pseudomass and (right)
${p_{\rm{T}}}$ for (upper)$W^{+} \rightarrow D_s^{+} \gamma$ and (lower)$Z \rightarrow D^0 \gamma$ candidates. The blue points represent the selected data candidates, the red points represent simulated signal events, normalized to the branching fraction of$W^{+} \rightarrow D_s^{+} \gamma$ ($Z \rightarrow D^0 \gamma$ ) set to$ 3\times 10^{-2} $ ($ 5\times 10^{-2} $ ), and the green lines represent the background shape, derived from pseudodata. -
The ratio
$ {\cal{R}}(W) $ of the$W^{+} \rightarrow D_s^{+} \gamma$ branching fraction relative to that of the$W^{+} \rightarrow \mu^{+} \nu$ decay is defined as$ \begin{aligned}[b] \mathcal{R}(W) \equiv & \frac{\mathcal{B}\left(W^+ \rightarrow D_s^+ \gamma\right)}{\mathcal{B}\left(W^+ \rightarrow \mu^+ \nu\right)} \\ = & \frac{N_s \times \varepsilon_n \times \mathcal{A}_n}{N_n \times \varepsilon_s \times \mathcal{A}_s} \times \frac{1}{\mathcal{B}\left(D_s^+ \rightarrow K^+ K^- \pi^+\right)}, \end{aligned}$
(2) where
$ \mathcal{B}(W^{+} \rightarrow D_s^{+} \gamma) $ is the branching fraction of$W^{+} \rightarrow D_s^{+} \gamma$ decay,$ \mathcal{B}(W^{+} \rightarrow \mu^{+} \nu) $ is the branching fraction of$ W^{+} \rightarrow \mu^{+} \nu $ decay, and$ \mathcal{B}(D_s^{+} \rightarrow K^{+} K^{-} \pi^{+}) $ is the branching fraction of$D_s^{+} \rightarrow K^{+} K^{-} \pi^{+}$ process;$ N_s $ ($ N_n $ ) is the total signal (normalization) yield after event selection and background subtraction;$ {\cal{A}}_{s} $ ($ {\cal{A}}_n $ ) is the probability for the true W boson decay charged products momenta to lie within the LHCb acceptance,$ \varepsilon_{s} $ ($ \varepsilon_{n} $ ) is the total trigger, reconstruction and selection efficiency of the signal (normalization) channel.The equivalent ratio of branching fractions,
$ {\cal{R}}(Z) $ , and absolute branching fraction of the$Z \rightarrow D^0 \gamma$ decay are studied using the$Z \rightarrow \mu^{+} \mu^{-}$ decay as a normalization channel. With the requirement that the final-state particle must be in the LHCb detector fiducial region, the definition can be written as$ \begin{aligned}[b] {\cal{R}}(Z) \equiv \frac{\mathcal{B}{( Z \rightarrow D^0 \gamma )}}{\mathcal{B}{( Z \rightarrow \mu^+ \mu^- )}} = \frac{N_{s}\times \varepsilon_{n}\times {\cal{A}}_{n}}{N_{n}\times \varepsilon_{s} \times {\cal{A}}_{s}}\times \frac{1}{\mathcal{B}( D^0 \rightarrow K^- \pi^+ )}, \end{aligned} $
(3) where
$ \mathcal{B}{(Z \rightarrow D^0 \gamma)} $ is the branching fraction of$Z \rightarrow D^0 \gamma$ decay,$ \mathcal{B}(Z \rightarrow \mu^{+} \mu^{-}) $ is the branching fraction of$ Z \rightarrow \mu^{+} \mu^{-} $ decay, and$ \mathcal{B}(D^0 \rightarrow K^{-} \pi^{+}) $ is the branching fraction of$D^0 \rightarrow K^{-} \pi^{+}$ process.As the number of final-state particles is different between signal and normalization channels, the acceptance correction is determined and applied to the
$ \cal{R} $ calculation. The$ {\cal{A}}_{s} $ and$ {\cal{A}}_n $ factors are evaluated using event generators. In the acceptance study, the uncertainty from parton distribution functions is taken as a systematic uncertainty. The efficiencies$ \varepsilon_{s} $ and$ \varepsilon_{n} $ are determined from control and simulated samples. For signal, the event selection efficiencies are determined from simulation, where the track detection and particle identification efficiencies are calibrated with the data [45–47]. The photon identification efficiency is calibrated using a$B^0 \rightarrow K^{* 0} \gamma$ control sample which is widely tested and used for the calibration of photon variables inside the LHCb collaboration, using only events with a photon of$ {E_{\rm{T}}} > 10 \; {\rm{GeV}} $ . The muon efficiencies are estimated using$Z \rightarrow \mu^{+} \mu^{-}$ data candidates with the tag-and-probe method [35]. -
The systematic uncertainties in the
$ {\cal{R}}(W) $ and$ {\cal{R}}(Z) $ measurements are summarised in Table 1. The uncertainties in the$D_s^{+} \rightarrow K^{+} K^{-} \pi^{+}$ and$D^0 \rightarrow K^{-} \pi^{+}$ branching fractions are 1.86% and 0.76%, respectively [48]. The uncertainties of the normalization modes are expected to be uncorrelated with the uncertainties of the signal modes. Systematic uncertainties from normalization channels are studied separately for the$W^{+} \rightarrow \mu^{+} \nu$ and$Z \rightarrow \mu^{+} \mu^{-}$ channels. Uncertainties from background estimation, efficiency calculations, signal determination and limited simulation sample size are taken into account, leading to relative uncertainties of 0.96% for$Z \rightarrow \mu^{+} \mu^{-}$ and 3.08% for$W^{+} \rightarrow \mu^{+} \nu$ decays in the$ {\cal{R}}(W) $ and$ {\cal{R}}(Z) $ measurements. The$W^{+} \rightarrow D_s^{+} \gamma$ simulation is corrected using the measured Dalitz-plot distribution. To determine the uncertainty from the meson decay modelling, the binning width of the reference Dalitz-plot distribution is varied by a factor of 0.75.Source $Z \rightarrow D^0 \gamma (\%) $ $W^{+} \rightarrow D_s^{+} \gamma (\%) $ Meson BF 0.76 1.86 Normalization 0.96 3.08 Dalitz − 0.24 MC sample size 0.11 0.09 PID 0.09 0.17 Photon ID 2.32 0.95 Calorimeter saturation 3.00 3.10 Background 0.08 0.36 Acceptance 0.57 0.82 PV association 0.57 0.29 Resolution 0.20 0.09 Total 4.07 4.94 Table 1. Relative systematic uncertainties (in %) in the
$ \cal{R} $ measurements for the$Z \rightarrow D^0 \gamma$ and$W^{+} \rightarrow D_s^{+} \gamma$ decay modes. The total systematic uncertainty is obtained from the sum in quadrature of all contributions.An uncertainty is assigned due to the limited size of the simulation samples used to determine the event selection efficiency. The PID efficiency is calibrated using a control data sample [20], and a systematic uncertainty arises due to the limited sample size. The uncertainty is estimated by enlarging or decreasing the binning of p, η, and event multiplicity of the control sample by a factor of two. Similarly, the systematic uncertainty associated with the photon identification efficiency calibration is evaluated by varying the binning of the
$B^0 \rightarrow K^{* 0} \gamma$ control sample. The modelling of saturated calorimeter cells in the simulation is calibrated using$B^0 \rightarrow K^{* 0} \gamma$ data events, and the systematic uncertainties from the size of the control sample and the binning schemes are studied. The combined uncertainty is determined to be 3.0% (3.1%) for$Z \rightarrow D^0 \gamma$ ($W^{+} \rightarrow D_s^{+} \gamma$ ). The uncertainty on the acceptance correction takes into account the size of the simulation samples, and uncertainties in the parton distribution function, factorisation and renormalisation scale dependencies as well as the uncertainty on$ \alpha_s $ , combined in quadrature.To estimate the systematic uncertainty from the background modelling, two sources are studied. The meson mass sideband regions are shifted to higher and lower masses by 0.03
$\; {\rm{GeV}}/c^2$ , and the deviations are assigned as uncertainty. An additional uncertainty is assigned by changing the binning of the meson${p_{\rm{T}}}$ (by a factor of up to 50%) in the nonparametric data-driven approach, using finer and coarser binnings. The uncertainty from background modelling is determined to be 0.08% (0.36%) for the$ Z \rightarrow D^0 \gamma $ ($ W^{+} \rightarrow D_s^{+} \gamma $ ) search. The PV association algorithm was updated during the data-taking period, which causes a mismatch between LHCb data and simulation, and introduces systematic effects in the efficiency estimation. A correction is studied and applied to the simulation, and an uncertainty is assigned for this correction. An additional correction is applied to the simulation to account for imperfect modelling of the resolution of the meson invariant mass, by applying a 0.5% (0.6%) smearing correction to the$D_s^{+}$ (${D^0}$ ) simulation. A systematic uncertainty is evaluated by varying the resolution correction within its statistical uncertainty. -
No significant peaking structure is found in the inspected pseudomass ranges. The
$ CL_S $ method [39, 40] is used to calculate upper limits on the branching fractions of the$W^{+} \rightarrow D_s^{+} \gamma$ and$Z \rightarrow D^0 \gamma$ decays. In the calculation, we use the pseudomass and${p_{\rm{T}}}$ distribution of$ W^+/Z $ boson candidates as observables, the signal shape is taken from the simulation after event selection, and the background distribution is estimated using a data-driven method. The upper limit on the ratios of branching fractions are determined to be$ \begin{aligned} {{\cal{R}}(Z)} <& {{{6.4\times 10^{-2}}}} \text{ at 95\% C.L.}, \\ {{\cal{R}}(W)} <& {{{6.1\times 10^{-3}}}} \text{ at 95\% C.L.} \end{aligned} $
The calculated and expected
$ CL_S $ exclusions are shown as a function of the branching fraction for$W^{+} \rightarrow D_s^{+} \gamma$ and$Z \rightarrow D^0 \gamma$ decays in Fig. 4. The upper limits on the$W^{+} \rightarrow D_s^{+} \gamma$ and$Z \rightarrow D^0 \gamma$ rare decay branching fractions are determined to beFigure 4. (color online) Upper limits on branching fractions of the (left)
$W^{+} \rightarrow D_s^{+} \gamma$ and (right)$Z \rightarrow D^0 \gamma$ decays.$ \begin{aligned} \mathcal{B}\left(Z \rightarrow D^0 \gamma\right) & <2.1 \times 10^{-3} \text { at } 95 {\text{%}} \text { C.L. }, \\ \mathcal{B}\left(W^+ \rightarrow D_s^+ \gamma\right) & <6.5 \times 10^{-4} \text { at } 95 {\text{%}} \text { C.L. }, \end{aligned}$
using the known values [48] of the
$Z \rightarrow \mu^{+} \mu^{-}$ and$W^{+} \rightarrow \mu^{+} \nu$ branching ratios. The expected upper limit on the branching fraction is calculated to be$ 1.2\times 10^{-3} $ ($ 1.9\times 10^{-3} $ ) for the$W^{+} \rightarrow D_s^{+} \gamma$ ($Z \rightarrow D^0 \gamma$ ) decay.
Search for the rare decays ${\boldsymbol W^{+} \rightarrow \boldsymbol D_s^{+} \gamma}$ and ${\boldsymbol Z \rightarrow \boldsymbol D^0 \gamma}$ at LHCb
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- S. Gromov 38, ,
- B.R. Gruberg Cazon 57, ,
- C. Gu 3, ,
- M. Guarise 21,i, ,
- M. Guittiere 11, ,
- P. A. Günther 17, ,
- E. Gushchin 38, ,
- A. Guth 14, ,
- Y. Guz 38, ,
- T. Gys 42, ,
- T. Hadavizadeh 63, ,
- C. Hadjivasiliou 60, ,
- G. Haefeli 43, ,
- C. Haen 42, ,
- J. Haimberger 42, ,
- S.C. Haines 49, ,
- T. Halewood-leagas 54, ,
- M.M. Halvorsen 42, ,
- P.M. Hamilton 60, ,
- J. Hammerich 54, ,
- Q. Han 7, ,
- X. Han 17, ,
- E.B. Hansen 56, ,
- S. Hansmann-Menzemer 17, ,
- L. Hao 6, ,
- N. Harnew 57, ,
- T. Harrison 54, ,
- C. Hasse 42, ,
- M. Hatch 42, ,
- J. He 6,c, ,
- K. Heijhoff 32, ,
- C. Henderson 59, ,
- R.D.L. Henderson 63,50, ,
- A.M. Hennequin 58, ,
- K. Hennessy 54, ,
- L. Henry 42, ,
- J. Herd 55, ,
- J. Heuel 14, ,
- A. Hicheur 2, ,
- D. Hill 43, ,
- M. Hilton 56, ,
- S.E. Hollitt 15, ,
- J. Horswill 56, ,
- R. Hou 7, ,
- Y. Hou 8, ,
- J. Hu 17, ,
- J. Hu 66, ,
- W. Hu 5, ,
- X. Hu 3, ,
- W. Huang 6, ,
- X. Huang 68, ,
- W. Hulsbergen 32, ,
- R.J. Hunter 50, ,
- M. Hushchyn 38, ,
- D. Hutchcroft 54, ,
- P. Ibis 15, ,
- M. Idzik 34, ,
- D. Ilin 38, ,
- P. Ilten 59, ,
- A. Inglessi 38, ,
- A. Iniukhin 38, ,
- A. Ishteev 38, ,
- K. Ivshin 38, ,
- R. Jacobsson 42, ,
- H. Jage 14, ,
- S.J. Jaimes Elles 41, ,
- S. Jakobsen 42, ,
- E. Jans 32, ,
- B.K. Jashal 41, ,
- A. Jawahery 60, ,
- V. Jevtic 15, ,
- E. Jiang 60, ,
- X. Jiang 4,6, ,
- Y. Jiang 6, ,
- M. John 57, ,
- D. Johnson 58, ,
- C.R. Jones 49, ,
- T.P. Jones 50, ,
- B. Jost 42, ,
- N. Jurik 42, ,
- I. Juszczak 35, ,
- S. Kandybei 45, ,
- Y. Kang 3, ,
- M. Karacson 42, ,
- D. Karpenkov 38, ,
- M. Karpov 38, ,
- J.W. Kautz 59, ,
- F. Keizer 42, ,
- D.M. Keller 62, ,
- M. Kenzie 50, ,
- T. Ketel 32, ,
- B. Khanji 15, ,
- A. Kharisova 38, ,
- S. Kholodenko 38, ,
- G. Khreich 11, ,
- T. Kirn 14, ,
- V.S. Kirsebom 43, ,
- O. Kitouni 58, ,
- S. Klaver 33, ,
- N. Kleijne 29,p, ,
- K. Klimaszewski 36, ,
- M.R. Kmiec 36, ,
- S. Koliiev 46, ,
- A. Kondybayeva 38, ,
- A. Konoplyannikov 38, ,
- P. Kopciewicz 34, ,
- R. Kopecna 17, ,
- P. Koppenburg 32, ,
- M. Korolev 38, ,
- I. Kostiuk 32,46, ,
- O. Kot 46, ,
- S. Kotriakhova ,
- A. Kozachuk 38, ,
- P. Kravchenko 38, ,
- L. Kravchuk 38, ,
- R.D. Krawczyk 42, ,
- M. Kreps 50, ,
- S. Kretzschmar 14, ,
- P. Krokovny 38, ,
- W. Krupa 34, ,
- W. Krzemien 36, ,
- J. Kubat 17, ,
- S. Kubis 75, ,
- W. Kucewicz 35,34, ,
- M. Kucharczyk 35, ,
- V. Kudryavtsev 38, ,
- A. Kupsc 77, ,
- D. Lacarrere 42, ,
- G. Lafferty 56, ,
- A. Lai 27, ,
- A. Lampis 27,h, ,
- D. Lancierini 44, ,
- C. Landesa Gomez 40, ,
- J.J. Lane 56, ,
- R. Lane 48, ,
- G. Lanfranchi 23, ,
- C. Langenbruch 14, ,
- J. Langer 15, ,
- O. Lantwin 38, ,
- T. Latham 50, ,
- F. Lazzari 29,t, ,
- M. Lazzaroni 25,l, ,
- R. Le Gac 10, ,
- S.H. Lee 78, ,
- R. Lefèvre 9, ,
- A. Leflat 38, ,
- S. Legotin 38, ,
- P. Lenisa i,21, ,
- O. Leroy 10, ,
- T. Lesiak 35, ,
- B. Leverington 17, ,
- A. Li 3, ,
- H. Li 66, ,
- K. Li 7, ,
- P. Li 17, ,
- P.-R. Li 67, ,
- S. Li 7, ,
- T. Li 4, ,
- T. Li 66, ,
- Y. Li 4, ,
- Z. Li 62, ,
- X. Liang 62, ,
- C. Lin 6, ,
- T. Lin 51, ,
- R. Lindner 42, ,
- V. Lisovskyi 15, ,
- R. Litvinov 27,h, ,
- G. Liu 66, ,
- H. Liu 6, ,
- Q. Liu 6, ,
- S. Liu 4,6, ,
- A. Lobo Salvia 39, ,
- A. Loi 27, ,
- R. Lollini 72, ,
- J. Lomba Castro 40, ,
- I. Longstaff 53, ,
- J.H. Lopes 2, ,
- A. Lopez Huertas 39, ,
- S. López Soliño 40, ,
- G.H. Lovell 49, ,
- Y. Lu 4,b, ,
- C. Lucarelli 22,j, ,
- D. Lucchesi 28,n, ,
- S. Luchuk 38, ,
- M. Lucio Martinez 74, ,
- V. Lukashenko 32,46, ,
- Y. Luo 3, ,
- A. Lupato 56, ,
- E. Luppi 21,i, ,
- A. Lusiani 29,p, ,
- K. Lynch 18, ,
- X.-R. Lyu 6, ,
- L. Ma 4, ,
- R. Ma 6, ,
- S. Maccolini 20, ,
- F. Machefert 11, ,
- F. Maciuc 37, ,
- I. Mackay 57, ,
- V. Macko 43, ,
- P. Mackowiak 15, ,
- L.R. Madhan Mohan 48, ,
- A. Maevskiy 38, ,
- D. Maisuzenko 38, ,
- M.W. Majewski 34, ,
- J.J. Malczewski 35, ,
- S. Malde 57, ,
- B. Malecki 35,42, ,
- A. Malinin 38, ,
- T. Maltsev 38, ,
- G. Manca 27,h, ,
- G. Mancinelli 10, ,
- C. Mancuso 11,25,l, ,
- D. Manuzzi 20, ,
- C.A. Manzari 44, ,
- D. Marangotto 25,l, ,
- J.F. Marchand 8, ,
- U. Marconi 20, ,
- S. Mariani 22,j, ,
- C. Marin Benito 39, ,
- J. Marks 17, ,
- A.M. Marshall 48, ,
- P.J. Marshall 54, ,
- G. Martelli 72,o, ,
- G. Martellotti 30, ,
- L. Martinazzoli 42,m, ,
- M. Martinelli 26,m, ,
- D. Martinez Santos 40, ,
- F. Martinez Vidal 41, ,
- A. Massafferri 1, ,
- M. Materok 14, ,
- R. Matev 42, ,
- A. Mathad 44, ,
- V. Matiunin 38, ,
- C. Matteuzzi 26, ,
- K.R. Mattioli 12, ,
- A. Mauri 32, ,
- E. Maurice 12, ,
- J. Mauricio 39, ,
- M. Mazurek 42, ,
- M. McCann 55, ,
- L. Mcconnell 18, ,
- T.H. McGrath 56, ,
- N.T. McHugh 53, ,
- A. McNab 56, ,
- R. McNulty 18, ,
- J.V. Mead 54, ,
- B. Meadows 59, ,
- G. Meier 15, ,
- D. Melnychuk 36, ,
- S. Meloni 26,m, ,
- M. Merk 32,74, ,
- A. Merli 25,l, ,
- L. Meyer Garcia 2, ,
- D. Miao 4,6, ,
- M. Mikhasenko 70,d, ,
- D.A. Milanes 69, ,
- E. Millard 50, ,
- M. Milovanovic 42, ,
- M.-N. Minard 8, ,
- A. Minotti 26,m, ,
- T. Miralles 9, ,
- S.E. Mitchell 52, ,
- B. Mitreska 56, ,
- D.S. Mitzel 15, ,
- A. Mödden 15, ,
- R.A. Mohammed 57, ,
- R.D. Moise 14, ,
- S. Mokhnenko 38, ,
- T. Mombächer 40, ,
- M. Monk 50,63, ,
- I.A. Monroy 69, ,
- S. Monteil 9, ,
- M. Morandin 28, ,
- G. Morello 23, ,
- M.J. Morello 29,p, ,
- J. Moron 34, ,
- A.B. Morris 70, ,
- A.G. Morris 50, ,
- R. Mountain 62, ,
- H. Mu 3, ,
- E. Muhammad 50, ,
- F. Muheim 52, ,
- M. Mulder 73, ,
- K. Müller 44, ,
- C.H. Murphy 57, ,
- D. Murray 56, ,
- R. Murta 55, ,
- P. Muzzetto 27,h, ,
- P. Naik 48, ,
- T. Nakada 43, ,
- R. Nandakumar 51, ,
- T. Nanut 42, ,
- I. Nasteva 2, ,
- M. Needham 52, ,
- N. Neri 25,l, ,
- S. Neubert 70, ,
- N. Neufeld 42, ,
- P. Neustroev 38, ,
- R. Newcombe 55, ,
- J. Nicolini 15,11, ,
- E.M. Niel 43, ,
- S. Nieswand 14, ,
- N. Nikitin 38, ,
- N.S. Nolte 58, ,
- C. Normand 8,h,27, ,
- J. Novoa Fernandez 40, ,
- C. Nunez 78, ,
- A. Oblakowska-Mucha 34, ,
- V. Obraztsov 38, ,
- T. Oeser 14, ,
- D.P. O'Hanlon 48, ,
- S. Okamura 21,i, ,
- R. Oldeman 27,h, ,
- F. Oliva 52, ,
- C.J.G. Onderwater 73, ,
- R.H. O'Neil 52, ,
- J.M. Otalora Goicochea 2, ,
- T. Ovsiannikova 38, ,
- P. Owen 44, ,
- A. Oyanguren 41, ,
- O. Ozcelik 52, ,
- K.O. Padeken 70, ,
- B. Pagare 50, ,
- P.R. Pais 42, ,
- T. Pajero 57, ,
- A. Palano 19, ,
- M. Palutan 23, ,
- Y. Pan 56, ,
- G. Panshin 38, ,
- L. Paolucci 50, ,
- A. Papanestis 51, ,
- M. Pappagallo 19,f, ,
- L.L. Pappalardo 21,i, ,
- C. Pappenheimer 59, ,
- W. Parker 60, ,
- C. Parkes 56, ,
- B. Passalacqua 21,i, ,
- G. Passaleva 22, ,
- A. Pastore 19, ,
- M. Patel 55, ,
- C. Patrignani 20,g, ,
- C.J. Pawley 74, ,
- A. Pearce 42, ,
- A. Pellegrino 32, ,
- M. Pepe Altarelli 42, ,
- S. Perazzini 20, ,
- D. Pereima 38, ,
- A. Pereiro Castro 40, ,
- P. Perret 9, ,
- M. Petric 53, ,
- K. Petridis 48, ,
- A. Petrolini 24,k, ,
- A. Petrov 38, ,
- S. Petrucci 52, ,
- M. Petruzzo 25, ,
- H. Pham 62, ,
- A. Philippov 38, ,
- R. Piandani 6, ,
- L. Pica 29,p, ,
- M. Piccini 72, ,
- B. Pietrzyk 8, ,
- G. Pietrzyk 11, ,
- M. Pili 57, ,
- D. Pinci 30, ,
- F. Pisani 42, ,
- M. Pizzichemi 26,m,42, ,
- V. Placinta 37, ,
- J. Plews 47, ,
- M. Plo Casasus 40, ,
- F. Polci 13,42, ,
- M. Poli Lener 23, ,
- M. Poliakova 62, ,
- A. Poluektov 10, ,
- N. Polukhina 38, ,
- I. Polyakov 42, ,
- E. Polycarpo 2, ,
- S. Ponce 42, ,
- D. Popov 6,42, ,
- S. Popov 38, ,
- S. Poslavskii 38, ,
- K. Prasanth 35, ,
- L. Promberger 17, ,
- C. Prouve 40, ,
- V. Pugatch 46, ,
- V. Puill 11, ,
- G. Punzi 29,q, ,
- H.R. Qi 3, ,
- W. Qian 6, ,
- N. Qin 3, ,
- S. Qu 3, ,
- R. Quagliani 43, ,
- N.V. Raab 18, ,
- R.I. Rabadan Trejo 6, ,
- B. Rachwal 34, ,
- J.H. Rademacker 48, ,
- R. Rajagopalan 62, ,
- M. Rama 29, ,
- M. Ramos Pernas 50, ,
- M.S. Rangel 2, ,
- F. Ratnikov 38, ,
- G. Raven 33,42, ,
- M. Rebollo De Miguel 41, ,
- F. Redi 42, ,
- J. Reich 48, ,
- F. Reiss 56, ,
- C. Remon Alepuz 41, ,
- Z. Ren 3, ,
- P.K. Resmi 10, ,
- R. Ribatti 29,p, ,
- A.M. Ricci 27, ,
- S. Ricciardi 51, ,
- K. Richardson 58, ,
- M. Richardson-Slipper 52, ,
- K. Rinnert 54, ,
- P. Robbe 11, ,
- G. Robertson 52, ,
- A.B. Rodrigues 43, ,
- E. Rodrigues 54, ,
- E. Rodriguez Fernandez 40, ,
- J.A. Rodriguez Lopez 69, ,
- E. Rodriguez Rodriguez 40, ,
- D.L. Rolf 42, ,
- A. Rollings 57, ,
- P. Roloff 42, ,
- V. Romanovskiy 38, ,
- M. Romero Lamas 40, ,
- A. Romero Vidal 40, ,
- J.D. Roth 78, ,
- M. Rotondo 23, ,
- M.S. Rudolph 62, ,
- T. Ruf 42, ,
- R.A. Ruiz Fernandez 40, ,
- J. Ruiz Vidal 41, ,
- A. Ryzhikov 38, ,
- J. Ryzka 34, ,
- J.J. Saborido Silva 40, ,
- N. Sagidova 38, ,
- N. Sahoo 47, ,
- B. Saitta 27,h, ,
- M. Salomoni 42, ,
- C. Sanchez Gras 32, ,
- I. Sanderswood 41, ,
- R. Santacesaria 30, ,
- C. Santamarina Rios 40, ,
- M. Santimaria 23, ,
- E. Santovetti 31,s, ,
- D. Saranin 38, ,
- G. Sarpis 14, ,
- M. Sarpis 70, ,
- A. Sarti 30, ,
- C. Satriano 30,r, ,
- A. Satta 31, ,
- M. Saur 15, ,
- D. Savrina 38, ,
- H. Sazak 9, ,
- L.G. Scantlebury Smead 57, ,
- A. Scarabotto 13, ,
- S. Schael 14, ,
- S. Scherl 54, ,
- M. Schiller 53, ,
- H. Schindler 42, ,
- M. Schmelling 16, ,
- B. Schmidt 42, ,
- S. Schmitt 14, ,
- O. Schneider 43, ,
- A. Schopper 42, ,
- M. Schubiger 32, ,
- S. Schulte 43, ,
- M.H. Schune 11, ,
- R. Schwemmer 42, ,
- B. Sciascia 23,42, ,
- A. Sciuccati 42, ,
- S. Sellam 40, ,
- A. Semennikov 38, ,
- M. Senghi Soares 33, ,
- A. Sergi 24,k, ,
- N. Serra 44, ,
- L. Sestini 28, ,
- A. Seuthe 15, ,
- Y. Shang 5, ,
- D.M. Shangase 78, ,
- M. Shapkin 38, ,
- I. Shchemerov 38, ,
- L. Shchutska 43, ,
- T. Shears 54, ,
- L. Shekhtman 38, ,
- Z. Shen 5, ,
- S. Sheng 4,6, ,
- V. Shevchenko 38, ,
- B. Shi 6, ,
- E.B. Shields 26,m, ,
- Y. Shimizu 11, ,
- E. Shmanin 38, ,
- R. Shorkin 38, ,
- J.D. Shupperd 62, ,
- B.G. Siddi 21,i, ,
- R. Silva Coutinho 62, ,
- G. Simi 28, ,
- S. Simone 19,f, ,
- M. Singla 63, ,
- N. Skidmore 56, ,
- R. Skuza 17, ,
- T. Skwarnicki 62, ,
- M.W. Slater 47, ,
- J.C. Smallwood 57, ,
- J.G. Smeaton 49, ,
- E. Smith 44, ,
- K. Smith 61, ,
- M. Smith 55, ,
- A. Snoch 32, ,
- L. Soares Lavra 9, ,
- M.D. Sokoloff 59, ,
- F.J.P. Soler 53, ,
- A. Solomin 38,48, ,
- A. Solovev 38, ,
- I. Solovyev 38, ,
- R. Song 63, ,
- F.L. Souza De Almeida 2, ,
- B. Souza De Paula 2, ,
- B. Spaan 15, ,
- E. Spadaro Norella 25,l, ,
- E. Spedicato 20, ,
- E. Spiridenkov 38, ,
- P. Spradlin 53, ,
- V. Sriskaran 42, ,
- F. Stagni 42, ,
- M. Stahl 42, ,
- S. Stahl 42, ,
- S. Stanislaus 57, ,
- E.N. Stein 42, ,
- O. Steinkamp 44, ,
- O. Stenyakin 38, ,
- H. Stevens 15, ,
- S. Stone 62, ,
- D. Strekalina 38, ,
- Y. S Su 6, ,
- F. Suljik 57, ,
- J. Sun 27, ,
- L. Sun 68, ,
- Y. Sun 60, ,
- P. Svihra 56, ,
- P.N. Swallow 47, ,
- K. Swientek 34, ,
- A. Szabelski 36, ,
- T. Szumlak 34, ,
- M. Szymanski 42, ,
- Y. Tan 3, ,
- S. Taneja 56, ,
- M.D. Tat 57, ,
- A. Terentev 38, ,
- F. Teubert 42, ,
- E. Thomas 42, ,
- D.J.D. Thompson 47, ,
- K.A. Thomson 54, ,
- H. Tilquin 55, ,
- V. Tisserand 9, ,
- S. T'Jampens 8, ,
- M. Tobin 4, ,
- L. Tomassetti 21,i, ,
- G. Tonani 25,l, ,
- X. Tong 5, ,
- D. Torres Machado 1, ,
- D.Y. Tou 3, ,
- S.M. Trilov 48, ,
- C. Trippl 43, ,
- G. Tuci 6, ,
- A. Tully 43, ,
- N. Tuning 32, ,
- A. Ukleja 36, ,
- D.J. Unverzagt 17, ,
- A. Usachov 32, ,
- A. Ustyuzhanin 38, ,
- U. Uwer 17, ,
- A. Vagner 38, ,
- V. Vagnoni 20, ,
- A. Valassi 42, ,
- G. Valenti 20, ,
- N. Valls Canudas 76, ,
- M. van Beuzekom 32, ,
- M. Van Dijk 43, ,
- H. Van Hecke 61, ,
- E. van Herwijnen 55, ,
- C.B. Van Hulse 40,v, ,
- M. van Veghel 73, ,
- R. Vazquez Gomez 39, ,
- P. Vazquez Regueiro 40, ,
- C. Vázquez Sierra 42, ,
- S. Vecchi 21, ,
- J.J. Velthuis 48, ,
- M. Veltri 22,u, ,
- A. Venkateswaran 43, ,
- M. Veronesi 32, ,
- M. Vesterinen 50, ,
- D. Vieira 59, ,
- M. Vieites Diaz 43, ,
- X. Vilasis-Cardona 76, ,
- E. Vilella Figueras 54, ,
- A. Villa 20, ,
- P. Vincent 13, ,
- F.C. Volle 11, ,
- D. vom Bruch 10, ,
- A. Vorobyev 38, ,
- V. Vorobyev 38, ,
- N. Voropaev 38, ,
- K. Vos 74, ,
- C. Vrahas 52, ,
- R. Waldi 17, ,
- J. Walsh 29, ,
- G. Wan 5, ,
- C. Wang 17, ,
- G. Wang 7, ,
- J. Wang 5, ,
- J. Wang 4, ,
- J. Wang 3, ,
- J. Wang 68, ,
- M. Wang 25, ,
- R. Wang 48, ,
- X. Wang 66, ,
- Y. Wang 7, ,
- Z. Wang 44, ,
- Z. Wang 3, ,
- Z. Wang 6, ,
- J.A. Ward 50,63, ,
- N.K. Watson 47, ,
- D. Websdale 55, ,
- Y. Wei 5, ,
- C. Weisser 58, ,
- B.D.C. Westhenry 48, ,
- D.J. White 56, ,
- M. Whitehead 53, ,
- A.R. Wiederhold 50, ,
- D. Wiedner 15, ,
- G. Wilkinson 57, ,
- M.K. Wilkinson 59, ,
- I. Williams 49, ,
- M. Williams 58, ,
- M.R.J. Williams 52, ,
- R. Williams 49, ,
- F.F. Wilson 51, ,
- W. Wislicki 36, ,
- M. Witek 35, ,
- L. Witola 17, ,
- C.P. Wong 61, ,
- G. Wormser 11, ,
- S.A. Wotton 49, ,
- H. Wu 62, ,
- J. Wu 7, ,
- K. Wyllie 42, ,
- Z. Xiang 6, ,
- D. Xiao 7, ,
- Y. Xie 7, ,
- A. Xu 5, ,
- J. Xu 6, ,
- L. Xu 3, ,
- L. Xu 3, ,
- M. Xu 50, ,
- Q. Xu 6, ,
- Z. Xu 9, ,
- Z. Xu 6, ,
- D. Yang 3, ,
- S. Yang 6, ,
- X. Yang 5, ,
- Y. Yang 6, ,
- Z. Yang 5, ,
- Z. Yang 60, ,
- L.E. Yeomans 54, ,
- V. Yeroshenko 11, ,
- H. Yeung 56, ,
- H. Yin 7, ,
- J. Yu 65, ,
- X. Yuan 62, ,
- E. Zaffaroni 43, ,
- M. Zavertyaev 16, ,
- M. Zdybal 35, ,
- O. Zenaiev 42, ,
- M. Zeng 3, ,
- C. Zhang 5, ,
- D. Zhang 7, ,
- L. Zhang 3, ,
- S. Zhang 65, ,
- S. Zhang 5, ,
- Y. Zhang 5, ,
- Y. Zhang 57, ,
- A. Zharkova 38, ,
- A. Zhelezov 17, ,
- Y. Zheng 6, ,
- T. Zhou 5, ,
- X. Zhou 6, ,
- Y. Zhou 6, ,
- V. Zhovkovska 11, ,
- X. Zhu 3, ,
- X. Zhu 7, ,
- Z. Zhu 6, ,
- V. Zhukov 14,38, ,
- Q. Zou 4,6, ,
- S. Zucchelli 20,g, ,
- D. Zuliani 28, ,
- G. Zunica 56, ,
- (LHCb Collaboration) ,
- 1. Centro Brasileiro de Pesquisas Físicas (CBPF), Rio de Janeiro, Brazil
- 2. Universidade Federal do Rio de Janeiro (UFRJ), Rio de Janeiro, Brazil
- 3. Center for High Energy Physics, Tsinghua University, Beijing, China
- 4. Institute Of High Energy Physics (IHEP), Beijing, China
- 5. School of Physics State Key Laboratory of Nuclear Physics and Technology, Peking University, Beijing, China
- 6. University of Chinese Academy of Sciences, Beijing, China
- 7. Institute of Particle Physics, Central China Normal University, Wuhan, China
- 8. Université Savoie Mont Blanc, CNRS, IN2P3-LAPP, Annecy, France
- 9. Université Clermont Auvergne, CNRS/IN2P3, LPC, Clermont-Ferrand, France
- 10. Aix Marseille Univ, CNRS/IN2P3, CPPM, Marseille, France
- 11. Université Paris-Saclay, CNRS/IN2P3, IJCLab, Orsay, France
- 12. Laboratoire Leprince-Ringuet, CNRS/IN2P3, Ecole Polytechnique, Institut Polytechnique de Paris, Palaiseau, France
- 13. LPNHE, Sorbonne Université, Paris Diderot Sorbonne Paris Cité, CNRS/IN2P3, Paris, France
- 14. I. Physikalisches Institut, RWTH Aachen University, Aachen, Germany
- 15. Fakultät Physik, Technische Universität Dortmund, Dortmund, Germany
- 16. Max-Planck-Institut für Kernphysik (MPIK), Heidelberg, Germany
- 17. Physikalisches Institut, Ruprecht-Karls-Universität Heidelberg, Heidelberg, Germany
- 18. School of Physics, University College Dublin, Dublin, Ireland
- 19. INFN Sezione di Bari, Bari, Italy
- 20. INFN Sezione di Bologna, Bologna, Italy
- 21. INFN Sezione di Ferrara, Ferrara, Italy
- 22. INFN Sezione di Firenze, Firenze, Italy
- 23. INFN Laboratori Nazionali di Frascati, Frascati, Italy
- 24. INFN Sezione di Genova, Genova, Italy
- 25. INFN Sezione di Milano, Milano, Italy
- 26. INFN Sezione di Milano-Bicocca, Milano, Italy
- 27. INFN Sezione di Cagliari, Monserrato, Italy
- 28. Università degli Studi di Padova, Università e INFN, Padova, Padova, Italy
- 29. INFN Sezione di Pisa, Pisa, Italy
- 30. INFN Sezione di Roma La Sapienza, Roma, Italy
- 31. INFN Sezione di Roma Tor Vergata, Roma, Italy
- 32. Nikhef National Institute for Subatomic Physics, Amsterdam, Netherlands
- 33. Nikhef National Institute for Subatomic Physics and VU University Amsterdam, Amsterdam, Netherlands
- 34. AGH - University of Science and Technology, Faculty of Physics and Applied Computer Science, Kraków, Poland
- 35. Henryk Niewodniczanski Institute of Nuclear Physics Polish Academy of Sciences, Kraków, Poland
- 36. National Center for Nuclear Research (NCBJ), Warsaw, Poland
- 37. Horia Hulubei National Institute of Physics and Nuclear Engineering, Bucharest-Magurele, Romania
- 38. Affiliated with an institute covered by a cooperation agreement with CERN
- 39. ICCUB, Universitat de Barcelona, Barcelona, Spain
- 40. Instituto Galego de Física de Altas Enerxías (IGFAE), Universidade de Santiago de Compostela, Santiago de Compostela, Spain
- 41. Instituto de Fisica Corpuscular, Centro Mixto Universidad de Valencia - CSIC, Valencia, Spain
- 42. European Organization for Nuclear Research (CERN), Geneva, Switzerland
- 43. Institute of Physics, Ecole Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland
- 44. Physik-Institut, Universität Zürich, Zürich, Switzerland
- 45. NSC Kharkiv Institute of Physics and Technology (NSC KIPT), Kharkiv, Ukraine
- 46. Institute for Nuclear Research of the National Academy of Sciences (KINR), Kyiv, Ukraine
- 47. University of Birmingham, Birmingham, United Kingdom
- 48. H.H. Wills Physics Laboratory, University of Bristol, Bristol, United Kingdom
- 49. Cavendish Laboratory, University of Cambridge, Cambridge, United Kingdom
- 50. Department of Physics, University of Warwick, Coventry, United Kingdom
- 51. STFC Rutherford Appleton Laboratory, Didcot, United Kingdom
- 52. School of Physics and Astronomy, University of Edinburgh, Edinburgh, United Kingdom
- 53. School of Physics and Astronomy, University of Glasgow, Glasgow, United Kingdom
- 54. Oliver Lodge Laboratory, University of Liverpool, Liverpool, United Kingdom
- 55. Imperial College London, London, United Kingdom
- 56. Department of Physics and Astronomy, University of Manchester, Manchester, United Kingdom
- 57. Department of Physics, University of Oxford, Oxford, United Kingdom
- 58. Massachusetts Institute of Technology, Cambridge, MA, United States
- 59. University of Cincinnati, Cincinnati, OH, United States
- 60. University of Maryland, College Park, MD, United States
- 61. Los Alamos National Laboratory (LANL), Los Alamos, NM, United States
- 62. Syracuse University, Syracuse, NY, United States
- 63. School of Physics and Astronomy, Monash University, Melbourne, Australia, associated to 50
- 64. Pontifícia Universidade Católica do Rio de Janeiro (PUC-Rio), Rio de Janeiro, Brazil, associated to 2
- 65. Physics and Micro Electronic College, Hunan University, Changsha City, China, associated to 7
- 66. Guangdong Provincial Key Laboratory of Nuclear Science, Guangdong-Hong Kong Joint Laboratory of Quantum Matter, Institute of Quantum Matter, South China Normal University, Guangzhou, China, associated to 3
- 67. Lanzhou University, Lanzhou, China, associated to 4
- 68. School of Physics and Technology, Wuhan University, Wuhan, China, associated to 3
- 69. Departamento de Fisica, Universidad Nacional de Colombia, Bogota, Colombia, associated to 13
- 70. Universität Bonn - Helmholtz-Institut für Strahlen und Kernphysik, Bonn, Germany, associated to 17
- 71. Eotvos Lorand University, Budapest, Hungary, associated to 42
- 72. INFN Sezione di Perugia, Perugia, Italy, associated to 21
- 73. Van Swinderen Institute, University of Groningen, Groningen, Netherlands, associated to 32
- 74. Universiteit Maastricht, Maastricht, Netherlands, associated to 32
- 75. Tadeusz Kosciuszko Cracow University of Technology, Cracow, Poland, associated to 35
- 76. DS4DS, La Salle, Universitat Ramon Llull, Barcelona, Spain, associated to 39
- 77. Department of Physics and Astronomy, Uppsala University, Uppsala, Sweden, associated to 53
- 78. University of Michigan, Ann Arbor, MI, United States, associated to 62
- a. Universidade de Brasília, Brasília, Brazil
- b. Central South U., Changsha, China
- c. Hangzhou Institute for Advanced Study, UCAS, Hangzhou, China
- d. Excellence Cluster ORIGINS, Munich, Germany
- e. Universidad Nacional Autónoma de Honduras, Tegucigalpa, Honduras
- f. Università di Bari, Bari, Italy
- g. Università di Bologna, Bologna, Italy
- h. Università di Cagliari, Cagliari, Italy
- i. Università di Ferrara, Ferrara, Italy
- j. Università di Firenze, Firenze, Italy
- k. Università di Genova, Genova, Italy
- l. Università degli Studi di Milano, Milano, Italy
- m. Università di Milano Bicocca, Milano, Italy
- n. Università di Padova, Padova, Italy
- o. Università di Perugia, Perugia, Italy
- p. Scuola Normale Superiore, Pisa, Italy
- q. Università di Pisa, Pisa, Italy
- r. Università della Basilicata, Potenza, Italy
- s. Università di Roma Tor Vergata, Roma, Italy
- t. Università di Siena, Siena, Italy
- u. Università di Urbino, Urbino, Italy
- v. Universidad de Alcalá, Alcalá de Henares, Spain
- Received Date: 2022-12-15
- Available Online: 2023-09-15
Abstract: A search for the rare decays