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Search for h_b(2P)toγchi_(bJ)(1P) at sqrt{s} = 10.860 GeV

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arxiv 2410.16181 v1 pith:H6UTS6SN submitted 2024-10-21 hep-ex

Search for h_b(2P)toγchi_(bJ)(1P) at sqrt{s} = 10.860 GeV

Belle Collaboration: A. Boschetti , R. Mussa , U. Tamponi , I. Adachi , H. Aihara , D. M. Asner , T. Aushev , R. Ayad
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classification hep-ex
keywords gammamathcaltimesbranchingcorrespondingcoupled-channelfractionsmodel
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In the bottomonium sector, the hindered magnetic dipole (M1) transitions between P-wave states $h_b(2P) \rightarrow \chi_{bJ}(1P) \gamma$, $J=0, \, 1, \, 2$, are expected to be severely suppressed according to the Relativized Quark Model, due to the spin flip of the $b$ quark. Nevertheless, a recent model following the coupled-channel approach predicts the corresponding branching fractions to be enhanced by orders of magnitude. In this Letter, we report the first search for such transitions. We find no significant signals and set upper limits at 90% CL on the corresponding branching fractions: $\mathcal{B}[h_b(2P)\to\gamma\chi_{b0}(1P)] < 2.7 \times 10^{-1}$, $\mathcal{B}[h_b(2P)\to\gamma\chi_{b1}(1P)] < 5.4 \times 10^{-3}$ and $\mathcal{B}[h_b(2P)\to\gamma\chi_{b2}(1P)] < 1.3 \times 10^{-2}$. These values help to constrain the parameters of the coupled-channel models. The results are obtained using a $121.4 \, fb^{-1}$ data sample taken around $\sqrt{s}= 10.860 \, GeV$ with the Belle detector at the KEKB asymmetric-energy $e^+e^-$ collider.

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