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Creators/Authors contains: "Yook, Y M"

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  1. A<sc>bstract</sc> We report measurements of the absolute branching fractions$$\mathcal{B}\left({B}_{s}^{0}\to {D}_{s}^{\pm }X\right)$$,$$\mathcal{B}\left({B}_{s}^{0}\to {D}^{0}/{\overline{D} }^{0}X\right)$$, and$$\mathcal{B}\left({B}_{s}^{0}\to {D}^{\pm }X\right)$$, where the latter is measured for the first time. The results are based on a 121.4 fb−1data sample collected at the Υ(10860) resonance by the Belle detector at the KEKB asymmetric-energye+ecollider. We reconstruct one$${B}_{s}^{0}$$meson in$${e}^{+}{e}^{-}\to \Upsilon\left(10860\right)\to {B}_{s}^{*}{\overline{B} }_{s}^{*}$$events and measure yields of$${D}_{s}^{+}$$,D0, andD+mesons in the rest of the event. We obtain$$\mathcal{B}\left({B}_{s}^{0}\to {D}_{s}^{\pm }X\right)=\left(68.6\pm 7.2\pm 4.0\right)\%$$,$$\mathcal{B}\left({B}_{s}^{0}\to {D}^{0}/{\overline{D} }^{0}X\right)=\left(21.5\pm 6.1\pm 1.8\right)\%$$, and$$\mathcal{B}\left({B}_{s}^{0}\to {D}^{\pm }X\right)=\left(12.6\pm 4.6\pm 1.3\right)\%$$, where the first uncertainty is statistical and the second is systematic. Averaging with previous Belle measurements gives$$\mathcal{B}\left({B}_{s}^{0}\to {D}_{s}^{\pm }X\right)=\left(63.4\pm 4.5\pm 2.2\right)\%$$and$$\mathcal{B}\left({B}_{s}^{0}\to {D}^{0}/{\overline{D} }^{0}X\right)=\left(23.9\pm 4.1\pm 1.8\right)\%$$. For the$${B}_{s}^{0}$$production fraction at the Υ(10860), we find$${f}_{s}=\left({21.4}_{-1.7}^{+1.5}\right)\%$$. 
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    Free, publicly-accessible full text available April 1, 2026
  2. A<sc>bstract</sc> We present a study of$$ {\Xi}_c^0\to {\Xi}^0{\pi}^0 $$ Ξ c 0 Ξ 0 π 0 ,$$ {\Xi}_c^0\to {\Xi}^0\eta $$ Ξ c 0 Ξ 0 η , and$$ {\Xi}_c^0\to {\Xi}^0{\eta}^{\prime } $$ Ξ c 0 Ξ 0 η decays using the Belle and Belle II data samples, which have integrated luminosities of 980 fb−1and 426 fb−1, respectively. We measure the following relative branching fractions$$ {\displaystyle \begin{array}{c}\mathcal{B}\left({\Xi}_c^0\to {\Xi}^0{\pi}^0\right)/\mathcal{B}\left({\Xi}_c^0\to {\Xi}^{-}{\pi}^{+}\right)=0.48\pm 0.02\left(\textrm{stat}\right)\pm 0.03\left(\textrm{syst}\right),\\ {}\mathcal{B}\left({\Xi}_c^0\to {\Xi}^0\eta \right)/\mathcal{B}\left({\Xi}_c^0\to {\Xi}^{-}{\pi}^{+}\right)=0.11\pm 0.01\left(\textrm{stat}\right)\pm 0.01\left(\textrm{syst}\right),\\ {}\mathcal{B}\left({\Xi}_c^0\to {\Xi}^0{\eta}^{\prime}\right)/\mathcal{B}\left({\Xi}_c^0\to {\Xi}^{-}{\pi}^{+}\right)=0.08\pm 0.02\left(\textrm{stat}\right)\pm 0.01\left(\textrm{syst}\right)\end{array}} $$ B Ξ c 0 Ξ 0 π 0 / B Ξ c 0 Ξ π + = 0.48 ± 0.02 stat ± 0.03 syst , B Ξ c 0 Ξ 0 η / B Ξ c 0 Ξ π + = 0.11 ± 0.01 stat ± 0.01 syst , B Ξ c 0 Ξ 0 η / B Ξ c 0 Ξ π + = 0.08 ± 0.02 stat ± 0.01 syst for the first time, where the uncertainties are statistical (stat) and systematic (syst). By multiplying by the branching fraction of the normalization mode,$$ \mathcal{B}\left({\Xi}_c^0\to {\Xi}^{-}{\pi}^{+}\right) $$ B Ξ c 0 Ξ π + , we obtain the following absolute branching fraction results$$ {\displaystyle \begin{array}{c}\mathcal{B}\left({\Xi}_c^0\to {\Xi}^0{\pi}^0\right)=\left(6.9\pm 0.3\left(\textrm{stat}\right)\pm 0.5\left(\textrm{syst}\right)\pm 1.3\left(\operatorname{norm}\right)\right)\times {10}^{-3},\\ {}\mathcal{B}\left({\Xi}_c^0\to {\Xi}^0\eta \right)=\left(1.6\pm 0.2\left(\textrm{stat}\right)\pm 0.2\left(\textrm{syst}\right)\pm 0.3\left(\operatorname{norm}\right)\right)\times {10}^{-3},\\ {}\mathcal{B}\left({\varXi}_c^0\to {\Xi}^0{\eta}^{\prime}\right)=\left(1.2\pm 0.3\left(\textrm{stat}\right)\pm 0.1\left(\textrm{syst}\right)\pm 0.2\left(\operatorname{norm}\right)\right)\times {10}^{-3},\end{array}} $$ B Ξ c 0 Ξ 0 π 0 = 6.9 ± 0.3 stat ± 0.5 syst ± 1.3 norm × 10 3 , B Ξ c 0 Ξ 0 η = 1.6 ± 0.2 stat ± 0.2 syst ± 0.3 norm × 10 3 , B Ξ c 0 Ξ 0 η = 1.2 ± 0.3 stat ± 0.1 syst ± 0.2 norm × 10 3 , where the third uncertainties are from$$ \mathcal{B}\left({\Xi}_c^0\to {\Xi}^{-}{\pi}^{+}\right) $$ B Ξ c 0 Ξ π + . The asymmetry parameter for$$ {\Xi}_c^0\to {\Xi}^0{\pi}^0 $$ Ξ c 0 Ξ 0 π 0 is measured to be$$ \alpha \left({\Xi}_c^0\to {\Xi}^0{\pi}^0\right)=-0.90\pm 0.15\left(\textrm{stat}\right)\pm 0.23\left(\textrm{syst}\right) $$ α Ξ c 0 Ξ 0 π 0 = 0.90 ± 0.15 stat ± 0.23 syst
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  3. A<sc>bstract</sc> We present the result of a search for the charged-lepton-flavor violating decayτ→μμ+μusing a 424 fb−1sample of data recorded by the Belle II experiment at the SuperKEKBe+ecollider. The selection ofe+e→τ+τevents is based on an inclusive reconstruction of the non-signal tau decay, and on a boosted decision tree to suppress background. We observe one signal candidate, which is compatible with the expectation from background processes. We set a 90% confidence level upper limit of 1.9×10−8on the branching fraction of theτ→ μμ+μdecay, which is the most stringent bound to date. 
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  4. Abstract We present measurements of the branching fractions of eight$$ {\overline{B}}^0 $$ B ¯ 0 →D(*)+K$$ {K}_{(S)}^{\left(\ast \right)0} $$ K S 0 ,B→D(*)0K$$ {K}_{(S)}^{\left(\ast \right)0} $$ K S 0 decay channels. The results are based on data from SuperKEKB electron-positron collisions at the Υ(4S) resonance collected with the Belle II detector, corresponding to an integrated luminosity of 362 fb−1. The event yields are extracted from fits to the distributions of the difference between expected and observedBmeson energy, and are efficiency-corrected as a function ofm(K$$ {K}_{(S)}^{\left(\ast \right)0} $$ K S 0 ) andm(D(*)$$ {K}_{(S)}^{\left(\ast \right)0} $$ K S 0 ) in order to avoid dependence on the decay model. These results include the first observation of$$ {\overline{B}}^0 $$ B ¯ 0 →D+K$$ {K}_S^0 $$ K S 0 ,B→D*0K$$ {K}_S^0 $$ K S 0 , and$$ {\overline{B}}^0 $$ B ¯ 0 →D*+K$$ {K}_S^0 $$ K S 0 decays and a significant improvement in the precision of the other channels compared to previous measurements. The helicity-angle distributions and the invariant mass distributions of theK$$ {K}_{(S)}^{\left(\ast \right)0} $$ K S 0 systems are compatible with quasi-two-body decays via a resonant transition with spin-parityJP= 1for theK$$ {K}_S^0 $$ K S 0 systems andJP= 1+for theKK*0systems. We also present measurements of the branching fractions of four$$ {\overline{B}}^0 $$ B ¯ 0 →D(*)+$$ {D}_s^{-} $$ D s ,B→D(*)0$$ {D}_s^{-} $$ D s decay channels with a precision compatible to the current world averages. 
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  5. We report the result of a search for the rare decay B 0 γ γ using a combined dataset of 753 × 10 6 B B ¯ pairs collected by the Belle experiment and 387 × 10 6 B B ¯ pairs collected by the Belle II experiment from decays of the ϒ ( 4 S ) resonance produced in e + e collisions. A simultaneous fit to the Belle and Belle II data sets yields 11.0 5.5 + 6.5 signal events, corresponding to a 2.5 σ significance. We determine the branching fraction B ( B 0 γ γ ) = ( 3.7 1.8 + 2.2 ( stat ) ± 0.5 ( syst ) ) × 10 8 and set a 90% credibility level upper limit of B ( B 0 γ γ ) < 6.4 × 10 8 . Published by the American Physical Society2024 
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  6. We search for the rare decay B + K + ν ν ¯ in a 362 fb 1 sample of electron-positron collisions at the ϒ ( 4 S ) resonance collected with the Belle II detector at the SuperKEKB collider. We use the inclusive properties of the accompanying B meson in ϒ ( 4 S ) B B ¯ events to suppress background from other decays of the signal B candidate and light-quark pair production. We validate the measurement with an auxiliary analysis based on a conventional hadronic reconstruction of the accompanying B meson. For background suppression, we exploit distinct signal features using machine learning methods tuned with simulated data. The signal-reconstruction efficiency and background suppression are validated through various control channels. The branching fraction is extracted in a maximum likelihood fit. Our inclusive and hadronic analyses yield consistent results for the B + K + ν ν ¯ branching fraction of [ 2.7 ± 0.5 ( stat ) ± 0.5 ( syst ) ] × 10 5 and [ 1.1 0.8 + 0.9 ( stat ) 0.5 + 0.8 ( syst ) ] × 10 5 , respectively. Combining the results, we determine the branching fraction of the decay B + K + ν ν ¯ to be [ 2.3 ± 0.5 ( stat ) 0.4 + 0.5 ( syst ) ] × 10 5 , providing the first evidence for this decay at 3.5 standard deviations. The combined result is 2.7 standard deviations above the standard model expectation. Published by the American Physical Society2024 
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