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Evidence for an ηc(1S)π resonance in B0 → ηc(1S)K+π decays

MPS-Authors
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Popov,  D.
Division Prof. Dr. James A. Hinton, MPI for Nuclear Physics, Max Planck Society;

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Schmelling,  M.
Division Prof. Dr. James A. Hinton, MPI for Nuclear Physics, Max Planck Society;

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Zavertiaev,  M.
Division Prof. Dr. James A. Hinton, MPI for Nuclear Physics, Max Planck Society;

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1809.07416.pdf
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Citation

LHCb collaboration, Aaij, R., Abellán Beteta, C., Adeva, B., Adinolfi, M., Aidala, C. A., et al. (2018). Evidence for an ηc(1S)π resonance in B0 → ηc(1S)K+π decays. European Physical Journal C, C78: 1019. doi:10.1140/epjc/s10052-018-6447-z.


Cite as: https://hdl.handle.net/21.11116/0000-0005-73CB-5
Abstract
A Dalitz plot analysis of $B^0 \to \eta_c(1S) K^+\pi^-$ decays is performed
using data samples of $pp$ collisions collected with the LHCb detector at
centre-of-mass energies of $\sqrt{s}=7,~8$ and $13$ TeV, corresponding to a
total integrated luminosity of $4.7~\text{fb}^{-1}$. A satisfactory description
of the data is obtained when including a contribution representing an exotic
$\eta_c(1S) \pi^-$ resonant state. The significance of this exotic resonance is
more than three standard deviations, while its mass and width are $4096 \pm
20~^{+18}_{-22}$ MeV and $152 \pm 58~^{+60}_{-35}$ MeV, respectively. The
spin-parity assignments $J^P=0^+$ and $J^{P}=1^-$ are both consistent with the
data. In addition, the first measurement of the $B^0 \to \eta_c(1S) K^+\pi^-$
branching fraction is performed and gives $\displaystyle \mathcal{B}(B^0 \to
\eta_c(1S) K^+\pi^-) = (5.73 \pm 0.24 \pm 0.13 \pm 0.66) \times 10^{-4}$, where
the first uncertainty is statistical, the second systematic, and the third is
due to limited knowledge of external branching fractions.