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❖ 2005 and later content is hosted outside of PROLA.
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J. J. Kelly et al. Jefferson Laboratory E91011 and Hall A Collaborations
Show Abstract
We measured angular distributions of differential cross section, beam analyzing power, and recoil polarization for neutral pion electroproduction at Q2=1.0 (GeV/c)2 in 10 bins of 1.17≤W≤1.35 GeV across the Δ resonance. A total of 16 independent response functions were extracted, of which 12 were observed for the first time. Comparisons with recent model calculations show that response functions governed by real parts of interference products are determined relatively well near the physical mass, W=MΔ≈1.232 GeV, but the variation among models is large for response functions governed by imaginary parts, and for both types of response functions, the variation increases rapidly with W>MΔ. We performed a multipole analysis that adjusts suitable subsets of ℓπ≤2 amplitudes with higher partial waves constrained by baseline models. This analysis provides both real and imaginary parts. The fitted multipole amplitudes are nearly model independent—there is very little sensitivity to the choice of baseline model or truncation scheme. By contrast, truncation errors in the traditional Legendre analysis of N→Δ quadrupole ratios are not negligible. Parabolic fits to the W dependence around MΔ for the multiple analysis gives values for Re(S1+/M1+)=(-6.61±0.18)% and Re(E1+/M1+)=(-2.87±0.19)% for the pπ0 channel at W=1.232 GeV and Q2=1.0 (GeV/c)2 that are distinctly larger than those from the Legendre analysis of the same data. Similarly, the multipole analysis gives Re(S0+/M1+)=(+7.1±0.8)% at W=1.232 GeV, consistent with recent models, while the traditional Legendre analysis gives the opposite sign because its truncation errors are quite severe.
Phys. Rev. C 75, 025201 (2007)
Cited 1 times
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K. A. Aniol et al. HAPPEX Collaboration
Show Abstract
We have measured the parity-violating electroweak asymmetry in the elastic scattering of polarized electrons from 4He at an average scattering angle ⟨θlab⟩=5.7° and a four-momentum transfer Q2=0.091 GeV2. From these data, for the first time, the strange electric form factor of the nucleon GEs can be isolated. The measured asymmetry of APV=(6.72±0.84(stat)±0.21(syst))×10-6 yields a value of GEs=-0.038±0.042(stat)±0.010(syst), consistent with zero.
Phys. Rev. Lett. 96, 022003 (2006)
Cited 28 times
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J. J. Kelly et al. Jefferson Laboratory E91011 and Hall A Collaborations
Show Abstract
We measured angular distributions of recoil-polarization response functions for neutral pion electroproduction for W=1.23 GeV at Q2=1.0 (GeV/c)2, obtaining 14 separated response functions plus 2 Rosenbluth combinations; of these, 12 have been observed for the first time. Dynamical models do not describe quantities governed by imaginary parts of interference products well, indicating the need for adjusting magnitudes and phases for nonresonant amplitudes. We performed a nearly model-independent multipole analysis and obtained values for Re (S1+/M1+)=-(6.84±0.15)% and Re (E1+/M1+)=-(2.91±0.19)% that are distinctly different from those from the traditional Legendre analysis based upon M1+ dominance and ℓπ≤1 truncation.
Phys. Rev. Lett. 95, 102001 (2005)
Cited 10 times
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V. Yu. Alexakhin et al. COMPASS Collaboration
Show Abstract
First measurements of the Collins and Sivers asymmetries of charged hadrons produced in deep-inelastic scattering of muons on a transversely polarized 6LiD target are presented. The data were taken in 2002 with the COMPASS spectrometer using the muon beam of the CERN SPS at 160 GeV/c. The Collins asymmetry turns out to be compatible with zero, as does the measured Sivers asymmetry within the present statistical errors.
Phys. Rev. Lett. 94, 202002 (2005)
Cited 31 times
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X. Zheng et al. Jefferson Lab Hall A Collaboration
Show Abstract
We report on measurements of the neutron spin asymmetries A1,2n and polarized structure functions g1,2n at three kinematics in the deep inelastic region, with x=0.33, 0.47, and 0.60 and Q2=2.7, 3.5, and 4.8 (GeV∕c)2, respectively. These measurements were performed using a 5.7 GeV longitudinally polarized electron beam and a polarized 3He target. The results for A1n and g1n at x=0.33 are consistent with previous world data and, at the two higher-x points, have improved the precision of the world data by about an order of magnitude. The new A1n data show a zero crossing around x=0.47 and the value at x=0.60 is significantly positive. These results agree with a next-to-leading-order QCD analysis of previous world data. The trend of data at high x agrees with constituent quark model predictions but disagrees with that from leading-order perturbative QCD (PQCD) assuming hadron helicity conservation. Results for A2n and g2n have a precision comparable to the best world data in this kinematic region. Combined with previous world data, the moment d2n was evaluated and the new result has improved the precision of this quantity by about a factor of 2. When combined with the world proton data, polarized quark distribution functions were extracted from the new g1n∕F1n values based on the quark-parton model. While results for Δu∕u agree well with predictions from various models, results for Δd∕d disagree with the leading-order PQCD prediction when hadron helicity conservation is imposed.
Phys. Rev. C 70, 065207 (2004)
Cited 18 times
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K. G. Fissum et al. Jefferson Lab Hall A Collaboration
Show Abstract
The physics program in Hall A at Jefferson Lab commenced in the summer of 1997 with a detailed investigation of the 16O(e,e′p) reaction in quasielastic, constant (q,ω) kinematics at Q2≈0.8 (GeV∕c)2, q≈1 GeV∕c, and ω≈445 MeV. Use of a self-calibrating, self-normalizing, thin-film waterfall target enabled a systematically rigorous measurement. Five-fold differential cross-section data for the removal of protons from the 1p-shell have been obtained for 0<pmiss<350 MeV∕c. Six-fold differential cross-section data for 0<Emiss<120 MeV were obtained for 0<pmiss<340 MeV∕c. These results have been used to extract the ALT asymmetry and the RL, RT, RLT, and RL+TT effective response functions over a large range of Emiss and pmiss. Detailed comparisons of the 1p-shell data with Relativistic Distorted-Wave Impulse Approximation (RDWIA), Relativistic Optical-Model Eikonal Approximation (ROMEA), and Relativistic Multiple-Scattering Glauber Approximation (RMSGA) calculations indicate that two-body currents stemming from meson-exchange currents (MEC) and isobar currents (IC) are not needed to explain the data at this Q2. Further, dynamical relativistic effects are strongly indicated by the observed structure in ALT at pmiss≈300 MeV∕c. For 25<Emiss<50 MeV and pmiss≈50 MeV∕c, proton knockout from the 1s1∕2-state dominates, and ROMEA calculations do an excellent job of explaining the data. However, as pmiss increases, the single-particle behavior of the reaction is increasingly hidden by more complicated processes, and for 280<pmiss<340 MeV∕c, ROMEA calculations together with two-body currents stemming from MEC and IC account for the shape and transverse nature of the data, but only about half the magnitude of the measured cross section. For 50<Emiss<120 MeV and 145<pmiss<340 MeV∕c, (e,e′pN) calculations which include the contributions of central and tensor correlations (two-nucleon correlations) together with MEC and IC (two-nucleon currents) account for only about half of the measured cross section. The kinematic consistency of the 1p-shell normalization factors extracted from these data with respect to all available 16O(e,e′p) data is also examined in detail. Finally, the Q2-dependence of the normalization factors is discussed.
Phys. Rev. C 70, 034606 (2004)
Cited 5 times
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G. Laveissière et al. Jefferson Lab Hall A Collaboration
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We report a virtual Compton scattering study of the proton at low c.m. energies. We have determined the structure functions PLL-PTT/ϵ and PLT, and the electric and magnetic generalized polarizabilities (GPs) αE(Q2) and βM(Q2) at momentum transfer Q2=0.92 and 1.76 GeV2. The electric GP shows a strong falloff with Q2, and its global behavior does not follow a simple dipole form. The magnetic GP shows a rise and then a falloff; this can be interpreted as the dominance of a long-distance diamagnetic pion cloud at low Q2, compensated at higher Q2 by a paramagnetic contribution from πN intermediate states.
Phys. Rev. Lett. 93, 122001 (2004)
Cited 2 times
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8.
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K. A. Aniol et al. HAPPEX Collaboration
Show Abstract
We have measured the parity-violating electroweak asymmetry in the elastic scattering of polarized electrons from protons. Significant contributions to this asymmetry could arise from the contributions of strange form factors in the nucleon. The measured asymmetry is A=−15.05±0.98(stat)±0.56(syst) ppm at the kinematic point ⟨θlab⟩=12.3° and ⟨Q2⟩=0.477 (GeV∕c)2. Based on these data as well as data on electromagnetic form factors, we extract the linear combination of strange form factors GEs+0.392GMs=0.014±0.020±0.010, where the first error arises from this experiment and the second arises from the electromagnetic form factor data. This paper provides a full description of the special experimental techniques employed for precisely measuring the small asymmetry, including the first use of a strained GaAs crystal and a laser-Compton polarimeter in a fixed target parity-violation experiment.
Phys. Rev. C 69, 065501 (2004)
Cited 24 times
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G. Laveissière et al. Jefferson Lab Hall A Collaboration
Show Abstract
Exclusive electroproduction of π0 mesons on protons in the backward hemisphere has been studied at Q2=1.0 GeV2 by detecting protons in the forward direction in coincidence with scattered electrons from the 4 GeV electron beam in Jefferson Lab’s Hall A. The data span the range of the total (γ*p) center-of-mass energy W from the pion production threshold to W=2.0 GeV. The differential cross sections σT+ϵσL, σTL, and σTT were separated from the azimuthal distribution and are presented together with the MAID and SAID parametrizations.
Phys. Rev. C 69, 045203 (2004)
Cited 5 times
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10.
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X. Zheng et al. Jefferson Lab Hall A Collaboration
Show Abstract
We have measured the neutron spin asymmetry A1n with high precision at three kinematics in the deep inelastic region at x=0.33, 0.47, and 0.60, and Q2=2.7, 3.5, and 4.8 (GeV/c)2, respectively. Our results unambiguously show, for the first time, that A1n crosses zero around x=0.47 and becomes significantly positive at x=0.60. Combined with the world proton data, polarized quark distributions were extracted. Our results, in general, agree with relativistic constituent quark models and with perturbative quantum chromodynamics (PQCD) analyses based on the earlier data. However they deviate from PQCD predictions based on hadron helicity conservation.
Phys. Rev. Lett. 92, 012004 (2004)
Cited 18 times
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11.
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O. Gayou et al. (Jefferson Lab Hall A Collaboration)
Show Abstract
The ratio of the electric and magnetic form factors of the proton GEp/GMp, which is an image of its charge and magnetization distributions, was measured at the Thomas Jefferson National Accelerator Facility (JLab) using the recoil polarization technique. The ratio of the form factors is directly proportional to the ratio of the transverse to longitudinal components of the polarization of the recoil proton in the elastic e→p→ep→ reaction. The new data presented span the range 3.5<Q2<5.6 GeV2 and are well described by a linear Q2 fit. Also, the ratio sqrt[Q2] F2p/F1p reaches a constant value above Q2 = 2 GeV2.
Phys. Rev. Lett. 88, 092301 (2002)
Cited 156 times
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12.
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N. Liyanage et al. (The Jefferson Lab Hall A Collaboration)
Show Abstract
We measured the cross section and response functions for the quasielastic 16O(e,e′p) reaction for missing energies 25≤Em≤120 MeV at missing momenta Pm≤340 MeV/c. For 25<Em<50 MeV and Pm≈60 MeV/c, the reaction is dominated by a single 1s1/2 proton knockout. At larger Pm, the single-particle aspects are increasingly masked by more complicated processes. Calculations which include pion exchange currents, isobar currents, and short-range correlations account for the shape and the transversity, but for only half of the magnitude of the measured cross section.
Phys. Rev. Lett. 86, 5670 (2001)
Cited 4 times
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13.
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S. Malov et al.
Show Abstract
The first (e→,e′p→) polarization transfer measurements on a nucleus heavier than deuterium have been carried out at Jefferson Laboratory. Transverse and longitudinal components of the polarization of protons ejected in the reaction 16O(e→,e′p→ ) were measured in quasielastic perpendicular kinematics at a Q2 of 0.8 (GeV/c)2. The data are in good agreement with state of the art calculations.
Phys. Rev. C 62, 057302 (2000)
Cited 16 times
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J. Gao et al. (The Jefferson Lab Hall A Collaboration)
Show Abstract
We have measured the cross section for quasielastic 1p-shell proton knockout in the 16O(e,e′p) reaction at ω = 0.439 GeV and Q2 = 0.8 (GeV/c)2 for missing momentum Pmiss≤355 MeV/c. We have extracted the response functions RL+TT, RT, RLT, and the left-right asymmetry, ALT, for the 1p1/2 and the 1p3/2 states. The data are well described by relativistic distorted wave impulse approximation calculations. At large Pmiss, the structure observed in ALT indicates the existence of dynamical relativistic effects.
Phys. Rev. Lett. 84, 3265 (2000)
Cited 28 times
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L. C. Alexa et al. (The Jefferson Lab Hall A Collaboration)
Show Abstract
The deuteron elastic structure function A(Q2) has been extracted in the range 0.7≤Q2≤6.0 (GeV/c)2 from cross section measurements of elastic electron-deuteron scattering in coincidence using the Hall A Facility of Jefferson Laboratory. The data are compared to theoretical models, based on the impulse approximation with the inclusion of meson-exchange currents, and to predictions of quark dimensional scaling and perturbative quantum chromodynamics.
Phys. Rev. Lett. 82, 1374 (1999)
Cited 34 times
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K. A. Aniol et al. (HAPPEX Collaboration)
Show Abstract
We have measured the parity-violating electroweak asymmetry in the elastic scattering of polarized electrons from the proton. The kinematic point [ 〈θlab〉 = 12.3° and 〈Q2〉 = 0.48 (GeV/c)2] is chosen to provide sensitivity, at a level that is of theoretical interest, to the strange electric form factor GEs. The result, A = -14.5±2.2 ppm, is consistent with the electroweak standard model and no additional contributions from strange quarks. In particular, the measurement implies GEs+0.39GMs = 0.023±0.034(stat)±0.022(syst)±0.026(δGEn), where the last uncertainty arises from the estimated uncertainty in the neutron electric form factor.
Phys. Rev. Lett. 82, 1096 (1999)
Cited 37 times
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