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A<sc>bstract</sc> We study the processesχbJωandχbJ(π+π−π0)non−ω(J= 0, 1, 2) at center-of-mass energies$$\sqrt{s}$$from 10.73 to 11.02 GeV using a 142.5 fb−1data sample collected with the Belle detector at the KEKB asymmetric-energye+e−collider; and at$$\sqrt{s}\sim 10.75$$GeV using a 19.8 fb−1sample collected with Belle II at SuperKEKB. We find that the Υ(10753) state decays intoχbJωbut not intoχbJ(π+π−π0)non−ω, while the Υ(10860) state, in contrast, decays intoχbJ(π+π−π0)non−ωbut not intoχbJω. The mass and width of the Υ(10753) state are measured to be (10756.1 ± 3.4(stat.) ± 2.7(syst.)) MeV/c2and (32.2 ± 11.3(stat.) ± 14.9(syst.)) MeV. The products of the partial width toe+e−and branching fractions for Υ(10753)→ χb1ωand Υ(10753)→ χb2ωare (1.57±0.27(stat.)±0.22(syst.)) eV and (1.39±0.41(stat.)±0.33(syst.)) eV.more » « lessFree, publicly-accessible full text available April 1, 2027
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A sample of of data collected by the Belle II experiment is used to measure the partial branching fractions of charmless semileptonic meson decays and determine the magnitude of the Cabibbo-Kobayashi-Maskawa (CKM) matrix element . Events containing a signal electron or muon and a fully reconstructed hadronic decay that constrains the signal kinematics are selected, while the rest of the event defines the hadronic system associated with the signal. To discriminate the signal from the 50-times larger background originating from CKM-favored semileptonic decays, a template fit is performed in both signal and control regions after applying an optimized selection. The partial branching fraction measured for lepton energies greater than 1 GeV in the signal meson rest frame is . From this measurement, using the Gambino, Giordano, Ossola, Uraltsev theoretical framework, is determined, where the uncertainties are experimental and theoretical, respectively. This value is consistent with the world average obtained from previous inclusive measurements. Different theoretical predictions and partial branching fractions measured in other phase-space regions, defined by additional selections on the and leptonic system masses, are also used to determine . This allows for a comparison of the resulting values across theoretical frameworks and phase-space regions.more » « lessFree, publicly-accessible full text available February 1, 2027
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We present a determination of the Cabibbo-Kobayashi-Maskawa matrix element from the decay using a data sample recorded by the Belle II experiment at the SuperKEKB collider. The semileptonic decay of one meson is reconstructed in the modes and , where denotes either an electron or a muon. Charge conjugation is implied. The second meson in the event is not reconstructed explicitly. Using an inclusive reconstruction of the unobserved neutrino momentum, we determine the recoil variable , where and are the four-velocities of the and mesons. We measure the total decay branching fractions to be and . We probe lepton flavor universality by measuring . Fitting the partial decay branching fraction as a function of and using the average of lattice QCD calculations of the form factor, we obtain .more » « lessFree, publicly-accessible full text available December 1, 2026
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We present a measurement of the branching fraction and fraction of longitudinal polarization of decays, which have two ’s in the final state. We also measure time-dependent violation parameters for decays into longitudinally polarized pairs. This analysis is based on a data sample containing mesons collected with the Belle II detector at the SuperKEKB asymmetric-energy collider in 2019–2022. We obtain , , , and , where the first uncertainties are statistical and the second are systematic. We use these results to perform an isospin analysis to constrain the Cabibbo-Kobayashi-Maskawa angle and obtain two solutions; the result consistent with other Standard Model constraints is . Published by the American Physical Society2025more » « less
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A<sc>bstract</sc> Using data samples of 983.0 fb−1and 427.9 fb−1accumulated with the Belle and Belle II detectors operating at the KEKB and SuperKEKB asymmetric-energye+e−colliders, singly Cabibbo-suppressed decays$$ {\Xi}_c^{+}\to p{K}_S^0 $$ ,$$ {\Xi}_c^{+}\to \Lambda {\pi}^{+} $$ , and$$ {\Xi}_c^{+}\to {\Sigma}^0{\pi}^{+} $$ are observed for the first time. The ratios of branching fractions of$$ {\Xi}_c^{+}\to p{K}_S^0 $$ ,$$ {\Xi}_c^{+}\to \Lambda {\pi}^{+} $$ , and$$ {\Xi}_c^{+}\to {\Sigma}^0{\pi}^{+} $$ relative to that of$$ {\Xi}_c^{+}\to {\Xi}^{-}{\pi}^{+}{\pi}^{+} $$ are measured to be$$ {\displaystyle \begin{array}{c}\frac{\mathcal{B}\left({\Xi}_c^{+}\to p{K}_S^0\right)}{\mathcal{B}\left({\Xi}_c^{+}\to {\Xi}^{-}{\pi}^{+}{\pi}^{+}\right)}=\left(2.47\pm 0.16\pm 0.07\right)\%,\\ {}\frac{\mathcal{B}\left({\Xi}_c^{+}\to \Lambda {\pi}^{+}\right)}{\mathcal{B}\left({\Xi}_c^{+}\to {\Xi}^{-}{\pi}^{+}{\pi}^{+}\right)}=\left(1.56\pm 0.14\pm 0.09\right)\%,\\ {}\frac{\mathcal{B}\left({\Xi}_c^{+}\to {\Sigma}^0{\pi}^{+}\right)}{\mathcal{B}\left({\Xi}_c^{+}\to {\Xi}^{-}{\pi}^{+}{\pi}^{+}\right)}=\left(4.13\pm 0.26\pm 0.22\right)\%.\end{array}} $$ Multiplying these values by the branching fraction of the normalization channel,$$ \mathcal{B}\left({\Xi}_c^{+}\to {\Xi}^{-}{\pi}^{+}{\pi}^{+}\right)=\left(2.9\pm 1.3\right)\% $$ , the absolute branching fractions are determined to be$$ {\displaystyle \begin{array}{c}\mathcal{B}\left({\Xi}_c^{+}\to p{K}_S^0\right)=\left(7.16\pm 0.46\pm 0.20\pm 3.21\right)\times {10}^{-4},\\ {}\mathcal{B}\left({\Xi}_c^{+}\to \Lambda {\pi}^{+}\right)=\left(4.52\pm 0.41\pm 0.26\pm 2.03\right)\times {10}^{-4},\\ {}\mathcal{B}\left({\Xi}_c^{+}\to {\Sigma}^0{\pi}^{+}\right)=\left(1.20\pm 0.08\pm 0.07\pm 0.54\right)\times {10}^{-3}.\end{array}} $$ The first and second uncertainties above are statistical and systematic, respectively, while the third ones arise from the uncertainty in$$ \mathcal{B}\left({\Xi}_c^{+}\to {\Xi}^{-}{\pi}^{+}{\pi}^{+}\right) $$ .more » « less
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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+e−collider. 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$${f}_{s}=\left({21.4}_{-1.7}^{+1.5}\right)\%$$.more » « less
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We report a measurement of the cross section in the energy range from 0.62 to 3.50 GeV using an initial-state radiation technique. We use an data sample corresponding to of integrated luminosity, collected at a center-of-mass energy at or near the resonance with the Belle II detector at the SuperKEKB collider. Signal yields are extracted by fitting the two-photon mass distribution in events, which involve a decay and an energetic photon radiated from the initial state. Signal efficiency corrections with an accuracy of 1.6% are obtained from several control data samples. The uncertainty on the cross section at the and resonances is dominated by the systematic uncertainty of 2.2%. The resulting cross sections in the 0.62–1.80 GeV energy range yield for the leading-order hadronic vacuum polarization contribution to the muon anomalous magnetic moment. This result differs by 2.5 standard deviations from the most precise current determination. Published by the American Physical Society2024more » « less
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We present the first search for the lepton-flavor-violating decay modes ( ) using the 711 and data samples recorded by the Belle and Belle II detectors, respectively. We use a hadronic -tagging technique to fully reconstruct a meson and search for signal decays in the system recoiling against the tagged meson, considering decays to either light leptons, one charged hadron, or one charged hadron and a neutral pion. We find no evidence for decays and set 90% confidence level upper limits on the branching fractions in the range of .more » « less
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Abstract A series of data samples was collected with the Belle II detector at the SuperKEKB collider from March 2019 to June 2022. We determine the integrated luminosities of these data samples using three distinct methodologies involving Bhabha (), digamma (), and dimuon () events. The total integrated luminosity obtained with Bhabha, digamma, and dimuon events is (426.88 ± 0.03 ± 2.61) fb−1, (429.28 ± 0.03 ± 2.62) fb−1, and (423.99 ± 0.04 ± 3.83) fb−1, where the first uncertainties are statistical and the second are systematic. The resulting total integrated luminosity obtained from the combination of the three methods is (427.87 ± 2.01) fb−1.more » « less
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We report measurements of time-dependent asymmetries in decays based on a data sample of events collected at the resonance with the Belle II detector. The Belle II experiment operates at the SuperKEKB asymmetric-energy collider. We measure decay-time distributions to determine -violating parameters and . We determine these parameters for two ranges of invariant mass: , which is dominated by decays, and a complementary region . Our results have improved precision as compared to previous measurements and are consistent with theory predictions. Published by the American Physical Society2025more » « less
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