6 research outputs found

    Technical Design Report for PANDA Electromagnetic Calorimeter (EMC)

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    This document presents the technical layout and the envisaged performance of the Electromagnetic Calorimeter (EMC) for the PANDA target spectrometer. The EMC has been designed to meet the physics goals of the PANDA experiment, which is being developed for the Facility for Antiproton and Ion Research (FAIR) at Darmstadt, Germany. The performance figures are based on extensive prototype tests and radiation hardness studies. The document shows that the EMC is ready for construction up to the front-end electronics interface

    Observation of Electromagnetic Dalitz decays J/ψ\to P e^+e^-

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    Based on a sample of (225.3\pm2.8)\times 10^{6} J/\psi events collected with the BESIII detector, the electromagnetic Dalitz decays of J/\psi \to P e^+e^-(P=\eta'/\eta/\pi^0) are studied. By reconstructing the pseudoscalar mesons in various decay modes, the decays J/\psi \to \eta' e^+e^-, J/\psi \to \eta e^+e^- and J/\psi \to \pi^0 e^+e^- are observed for the first time. The branching fractions are determined to be \mathcal{B}(J/\psi\to \eta' e^+e^-) = (5.81\pm0.16\pm0.31)\times10^{-5}, \mathcal{B}(J/\psi\to \eta e^+e^-) = (1.16\pm0.07\pm0.06)\times10^{-5}, and \mathcal{B}(J/\psi\to \pi^0 e^+e^-)=(7.56\pm1.32\pm0.50)\times10^{-7}, where the first errors are statistical and the second ones systematic

    Physics Performance Report for PANDA: Strong Interaction Studies with Antiprotons

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    To study fundamental questions of hadron and nuclear physics in interactions of antiprotons with nucleons and nuclei, the universal PANDA detector will be built. Gluonic excitations, the physics of strange and charm quarks and nucleon structure studies will be performed with unprecedented accuracy thereby allowing high-precision tests of the strong interaction. The proposed PANDA detector is a state-of-the art internal target detector at the HESR at FAIR allowing the detection and identification of neutral and charged particles generated within the relevant angular and energy range. This report presents a summary of the physics accessible at PANDA and what performance can be expected

    "Table 2" of "Evidence for e+e−→γχc1,2e^+e^-\to\gamma\chi_{c1, 2} at center-of-mass energies from 4.009 to 4.360 GeV"

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    The results on e+e−→γχc1e^+e^-\to\gamma\chi_{c1} Born cross section measurement. Shown in the table are the significance σ\sigma, detection efficiency ϵ\epsilon, number of signal events from the fits Nobs^{\rm obs}, radiative correction factor (1+δr1+\delta^{r}), vacuum polarization factor (1+δv1+\delta^{v}), upper limit (at the 90%\% C.L.) on the number of signal events NUP^{\rm UP}, Born cross section σB\sigma^{B} and upper limit (at the 90%\% C.L.) on the Born cross section σUP\sigma^{\rm UP} at different CME points

    "Table 3" of "Evidence for e+e−→γχc1,2e^+e^-\to\gamma\chi_{c1, 2} at center-of-mass energies from 4.009 to 4.360 GeV"

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    The results on e+e−→γχc2e^+e^-\to\gamma\chi_{c2} Born cross section measurement. Shown in the table are the significance σ\sigma, detection efficiency ϵ\epsilon, number of signal events from the fits Nobs^{\rm obs}, radiative correction factor (1+δr1+\delta^{r}), vacuum polarization factor (1+δv1+\delta^{v}), upper limit (at the 90%\% C.L.) on the number of signal events NUP^{\rm UP}, Born cross section σB\sigma^{B} and upper limit (at the 90%\% C.L.) on the Born cross section σUP\sigma^{\rm UP} at different CME points

    "Table 1" of "Evidence for e+e−→γχc1,2e^+e^-\to\gamma\chi_{c1, 2} at center-of-mass energies from 4.009 to 4.360 GeV"

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    The results on e+e−→γχc0e^+e^-\to\gamma\chi_{c0} Born cross section measurement. Shown in the table are the significance σ\sigma, detection efficiency ϵ\epsilon, number of signal events from the fits Nobs^{\rm obs}, radiative correction factor (1+δr1+\delta^{r}), vacuum polarization factor (1+δv1+\delta^{v}), upper limit (at the 90%\% C.L.) on the number of signal events NUP^{\rm UP}, Born cross section σB\sigma^{B} and upper limit (at the 90%\% C.L.) on the Born cross section σUP\sigma^{\rm UP} at different CME points. Numbers taken from journal version: some slight differences with respect to arXiv:1411.6336v1 in last two columns
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