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Free, publicly-accessible full text available August 1, 2027
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We report features of the design, construction, installation, and performance of the BigBite Calorimeter (BBCal), a lead-glass electromagnetic calorimeter constructed as part of the BigBite Spectrometer (BBS), which served as the electron arm for the Super Bigbite Spectrometer (SBS) program of high-precision neutron electromagnetic form factor measurements in Hall A at Jefferson Lab. As a total-absorption calorimeter, BBCal provided the primary electron trigger for BBS, detecting quasi-elastically scattered electrons in the 1–4 GeV energy range with an energy resolution of approximately 6.2%, position resolution of 1.2 cm, and timing resolution of 0.5 ns.more » « lessFree, publicly-accessible full text available October 1, 2027
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Free, publicly-accessible full text available August 12, 2027
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Measurements of semi-inclusive deep-inelastic scattering multiplicities for and from proton and deuteron targets are reported on a grid of hadron kinematic variables , and for leptonic kinematic variables in the range and . Data were acquired in 2018 and 2019 at Jefferson Lab Hall C with a 10.6 GeV electron beam impinging on 10-cm-long liquid hydrogen and deuterium targets. Scattered electrons and charged pions were detected in the High Momentum Spectrometer and Super High Momentum Spectrometer, respectively. The multiplicities were fitted for each bin in to extract the —independent and the azimuthal modulations and . The dependence of the results was found to be remarkably consistent for the four cases studied: over the range , as were the multiplicities evaluated near over the extended range . The Gaussian widths of the dependence exhibit a quadratic increase with . The modulations were found to be consistent with zero for , in agreement with previous world data, while the moments were, in many cases, significantly greater than zero. The modulations were found to be consistent with zero. The higher statistical precision of this dataset of about 20 000 individual multiplicity values, compared with previously published data, should allow improved determinations of quark transverse momentum distributions and higher twist contributions.more » « lessFree, publicly-accessible full text available March 1, 2027
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Pion photoproduction in the reaction has been measured in the FROzen Spin Target (FROST) experiment at the Thomas Jefferson National Accelerator Facility. In this experiment, circularly polarized photons with energies up to 3.082 GeV impinged on a transversely polarized frozen-spin target. Final-state protons were detected in the Continuous Electron Beam Accelerator Facility (CEBAF) Large Acceptance Spectrometer. The polarization observables and have been extracted for from 1445 to 2525 MeV, of which the energy range is much broader, and the precision is better than the existing measurements in higher ranges. The data generally agree with predictions of present partial-wave analyses but also show marked differences for higher ranges. By incorporating the present data into the databases, the Scattering Analysis Interactive Data (SAID) fits have been improved with relatively small and significant changes in the parameters of the and have been found with the JüBo model.more » « lessFree, publicly-accessible full text available July 1, 2027
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Free, publicly-accessible full text available June 1, 2027
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The polarization of hyperons is preserved in the angular distribution of their decay products. This property allows one to study the spin structure of the . In semi-inclusive deep inelastic scattering where a high energy lepton interacts with a nucleon target and one or more hadrons and the scattered lepton are detected in the final state, the probability for a struck quark to impart the polarization of the lepton to the may be measured. In particular, in electron-proton scattering this quantity may be related to the longitudinal light quark polarization of the . Currently, limited experimental data cannot discriminate between different models of spin structure. This work reports on the measurement of the longitudinal spin transfer to the using data taken by the CLAS12 spectrometer at Jefferson Lab with a 10.6 GeV longitudinally polarized electron beam and an unpolarized hydrogen target. This measurement is the most precise to date, and, in comparison with theory predictions, it offers valuable insight into the relative dominance of current and target fragmentation in production.more » « lessFree, publicly-accessible full text available May 29, 2027
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We present measurements of the total and differential cross sections for near-threshold photoproduction obtained with the CLAS12 detector at the Thomas Jefferson National Accelerator Facility. The results are based on data collected during the fall 2018 and spring 2019 running periods, using electron beams with energies of 10.6 and 10.2 GeV, respectively, scattered off a liquid-hydrogen target. Near-threshold photoproduction offers a unique sensitivity to the strong interaction in the nonperturbative regime of quantum chromodynamics (QCD). The energy dependence of the cross section constrains the underlying production mechanisms, including multigluon exchange and potential baryonic excitations. Additionally, the dependence of the differential cross section can be related to the transverse spatial distribution of gluons in the proton, providing critical input for theoretical descriptions of the gluonic structure of the proton. An interpretation of the results in terms of the gluon content of the proton is presented, providing new experimental constraints on QCD-inspired models of the proton structure and the role of gluonic degrees of freedom in hadronic mass generation.more » « lessFree, publicly-accessible full text available June 1, 2027
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Extracting accurate results from neutrino oscillation and cross section experiments requires accurate simulation of the neutrino-nucleus interaction. The rescattering of outgoing hadrons (final state interactions) by the rest of the nucleus is an important component of these interactions. We present a new measurement of proton transparency (defined as the fraction of outgoing protons that emerge without significant rescattering) using electron-nucleus scattering data recorded by the CLAS detector at Jefferson Laboratory on helium, carbon, and iron targets. This analysis uses a new data-driven method to extract the transparency. It defines transparency as the ratio of electron-scattering events with a detected proton to quasi-elastic electron-scattering events where a proton should have been knocked out. Our results are consistent with previous measurements that determined the transparency from the ratio of measured events to theoretically predicted events. We find that the GENIE event generator, which is widely used by oscillation experiments to simulate neutrino-nucleus interactions, needs to better describe both the nuclear ground state and proton rescattering in order to reproduce our measured transparency ratios, especially at lower proton momenta.more » « lessFree, publicly-accessible full text available May 1, 2027
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