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Dive into the research topics where R. Suleiman is active.

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Featured researches published by R. Suleiman.


Physical Review Letters | 2006

Parity-violating electron scattering from 4He and the strange electric form factor of the nucleon.

K. A. Aniol; D.S. Armstrong; T. Averett; H. Benaoum; P. Y. Bertin; E. Burtin; J. Cahoon; G. D. Cates; C.C. Chang; Y. C. Chao; J. P. Chen; Seonho Choi; E. Chudakov; B. Craver; F. Cusanno; P. Decowski; D. Deepa; C. Ferdi; R. J. Feuerbach; J. M. Finn; S. Frullani; K. Fuoti; F. Garibaldi; R. Gilman; A. Glamazdin; V. Gorbenko; J. Grames; J. Hansknecht; D. W. Higinbotham; R. Holmes

We have measured the parity-violating electroweak asymmetry in the elastic scattering of polarized electrons from ^4He at an average scattering angle= 5.7 degrees and a four-momentum transfer Q^2 = 0.091 GeV^2. From these data, for the first time, the strange electric form factor of the nucleon G^s_E can be isolated. The measured asymmetry of A_PV = (6.72 +/- 0.84 (stat) +/- 0.21 (syst) parts per million yields a value of G^s_E = -0.038 +/- 0.042 (stat) +/- 0.010 (syst), consistent with zero.


Physical Review Letters | 2006

Precision Measurements of the Nucleon Strange Form Factors at Q**2 ~ 0.1-GeV**2

A. Acha; K. A. Aniol; D.S. Armstrong; J. Arrington; T. Averett; S. L. Bailey; J. Barber; A. Beck; H. Benaoum; J. Benesch; P. Y. Bertin; P. Bosted; F. Butaru; E. Burtin; G. D. Cates; Y. C. Chao; J. P. Chen; E. Chudakov; E. Cisbani; B. Craver; F. Cusanno; R. De Leo; P. Decowski; A. Deur; R. J. Feuerbach; J. M. Finn; S. Frullani; S. A. Fuchs; K. Fuoti; R. Gilman

We report new measurements of the parity-violating asymmetry A_PV in elastic scattering of 3 GeV electrons off hydrogen and 4He targets with~6.0 degrees. The 4He result is A_PV = (+6.40 +/- 0.23 (stat) +/- 0.12 (syst)) x10^-6. The hydrogen result is A_PV = (-1.58 +/- 0.12 (stat) +/- 0.04 (syst)) x10^-6. These results significantly improve constraints on the electric and magnetic strange form factors G_E^s and G_M^s. We extract G_E^s = 0.002 +/- 0.014 +/- 0.007 at= 0.077 GeV^2, and G_E^s + 0.09 G_M^s = 0.007 +/- 0.011 +/- 0.006 at= 0.109 GeV^2, providing new limits on the role of strange quarks in the nucleon charge and magnetization distributions.


Physics Letters B | 2006

Constraints on the nucleon strange form factors at Q2∼0.1 GeV2

K. A. Aniol; D.S. Armstrong; T. Averett; H. Benaoum; P. Y. Bertin; E. Burtin; J. Cahoon; G. D. Cates; C.C. Chang; Y. C. Chao; J. P. Chen; Seonho Choi; E. Chudakov; B. Craver; F. Cusanno; P. Decowski; D. Deepa; C. Ferdi; R. J. Feuerbach; J. M. Finn; S. Frullani; K. Fuoti; F. Garibaldi; R. Gilman; A. Glamazdin; V. Gorbenko; J. Grames; J. Hansknecht; D. W. Higinbotham; R. Holmes

We report the most precise measurement to date of a parity-violating asymmetry in elastic electron-proton scattering. The measurement was carried out with a beam energy of 3.03 GeV and a scattering angle=6 degrees, with the result A_PV = -1.14 +/- 0.24 (stat) +/- 0.06 (syst) parts per million. From this we extract, at Q^2 = 0.099 GeV^2, the strange form factor combination G_E^s + 0.080 G_M^s = 0.030 +/- 0.025 (stat) +/- 0.006 (syst) +/- 0.012 (FF) where the first two errors are experimental and the last error is due to the uncertainty in the neutron electromagnetic form factor. This result significantly improves current knowledge of G_E^s and G_M^s at Q^2 ~0.1 GeV^2. A consistent picture emerges when several measurements at about the same Q^2 value are combined: G_E^s is consistent with zero while G_M^s prefers positive values though G_E^s=G_M^s=0 is compatible with the data at 95% C.L.


Physical Review Letters | 2004

Parity-Violating Electron Deuteron Scattering and the Proton's Neutral Weak Axial Vector Form Factor

Takeo Ito; T. Averett; D. Barkhuff; G. Batigne; D. Beck; E. J. Beise; A. Blake; H. Breuer; R. Carr; B. Clasie; S. Covrig; A. Danagoulian; G. Dodson; K. Dow; D. Dutta; M. Farkhondeh; B. W. Filippone; W. Franklin; C. Furget; H. Gao; J. Gao; K. Gustafsson; L. Hannelius; R. Hasty; A.M. Hawthorne-Allen; M.C. Herda; C.E. Jones; P. King; W. Korsch; S. Kowalski

We report on a new measurement of the parity-violating asymmetry in quasielastic electron scattering from the deuteron at backward angles at Q2=0.038 (GeV/c)2. This quantity provides a determination of the neutral weak axial vector form factor of the nucleon, which can potentially receive large electroweak corrections. The measured asymmetry A=-3.51+/-0.57 (stat)+/-0.58 (syst) ppm is consistent with theoretical predictions. We also report on updated results of the previous experiment at Q2=0.091 (GeV/c)2, which are also consistent with theoretical predictions.


Physical Review Letters | 2005

Recoil Polarization for Delta Excitation in Pion Electroproduction

J. J. Kelly; R. Roche; Z. Chai; M. Jones; O. Gayou; A. J. Sarty; S. Frullani; K. A. Aniol; E. J. Beise; F. Benmokhtar; W. Bertozzi; W. Boeglin; T. Botto; E. J. Brash; H. Breuer; E. Brown; E. Burtin; J. R. Calarco; C. Cavata; C.C. Chang; N. S. Chant; J. P. Chen; M. Coman; D. Crovelli; R. De Leo; S Dieterich; S. Escoffier; Kevin Fissum; V. Garde; F. Garibaldi

We measured angular distributions of recoil-polarization response functions for neutral pion electroproduction for W = 1.23 GeV at Q(2) = 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 (S(1+)/M(1+)) = -(6.84 +/- 0.15)% and Re (E(1+)/M(1+)) = -(2.91 +/- 0.19)% that are distinctly different from those from the traditional Legendre analysis based upon M1+ dominance and ll(pi) < or = 1 truncation.


Physical Review Letters | 2005

Quasielastic He-3(e,e(')p)H-2 reaction at Q(2)=1.5 GeV2 for recoil momenta up to 1 GeV/c

M. Rvachev; F Benmokhtar; E. Penel-Nottaris; K. A. Aniol; W. Bertozzi; W. Boeglin; F. Butaru; Calarco; Z. Chai; C.C. Chang; J. P. Chen; E. Chudakov; E. Cisbani; A. Cochran; J. C. Cornejo; S Dieterich; P. Djawotho; W. Duran; M. B. Epstein; J. M. Finn; Kevin Fissum; A. Frahi-Amroun; S. Frullani; C. Furget; F. Garibaldi; O. Gayou; S. Gilad; R. Gilman; C. Glashausser; J. O. Hansen

We have studied the quasielastic He-3(e,e()p)H-2 reaction in perpendicular coplanar kinematics, with the energy and the momentum transferred by the electron fixed at 840 MeV and 1502 MeV/c, respectively. The He-3(e,e()p)H-2 cross section was measured for missing momenta up to 1000 MeV/c, while the A(TL) asymmetry was extracted for missing momenta up to 660 MeV/c. For missing momenta up to 150 MeV/c, the cross section is described by variational calculations using modern He-3 wave functions. For missing momenta from 150 to 750 MeV/c, strong final-state interaction effects are observed. Near 1000 MeV/c, the experimental cross section is more than an order of magnitude larger than predicted by available theories. The A(TL) asymmetry displays characteristic features of broken factorization with a structure that is similar to that generated by available models.


Physical Review Letters | 2002

H-2(e,e ' p)n reaction at high recoil momenta

Paul E. Ulmer; K. A. Aniol; H. Arenhövel; J. P. Chen; E. Chudakov; D. Crovelli; J. M. Finn; Kevin Fissum; O. Gayou; Jonatan Piedra Gomez; J.-O. Hansen; C. W. de Jager; Sabine Jeschonnek; M. K. Jones; M. Kuss; J. J. LeRose; M. Liang; R. Lindgren; S. Malov; D. Meekins; R. Michaels; John C. Mitchell; Charles F. Perdrisat; Punjabi; R. Roche; Franck Sabatie; A. Saha; R. Suleiman; L. Todor; B. Wojtsekhowski

The 2H(e,e()p)n cross section was measured in Hall A of the Thomas Jefferson National Accelerator Facility near the top of the quasielastic peak (x(Bj)=0.964) at a four-momentum transfer squared, Q(2)=0.665 (GeV/c) (2) (omega=0.368 GeV, W=2.057 GeV), and for recoil momenta up to 550 MeV/c. The measured cross section deviates by 1-2sigma from a state-of-the-art calculation at low recoil momenta. At high recoil momenta the cross section is well described by the same calculation; however, in this region, final-state interactions and interaction currents are predicted to be large, and alternative choices of nucleon-nucleon potential and nucleon current operator may result in significant spread in the calculations.


Physical Review Letters | 2005

Q^2 Dependence of the Neutron Spin Structure Function g~2^n at Low Q^2

K. Kramer; D.S. Armstrong; T. Averett; W. Bertozzi; S. Binet; C. Butuceanu; A. Camsonne; G. D. Cates; J. P. Chen; S. Choi; E. Chudakov; F. Cusanno; A Deur; P Djawotho; D. Dutta; J. M. Finn; H. Gao; F. Garibaldi; O. Gayou; R. Gilman; A. Glamazdin; Gorbenko; K. A. Griffioen; J. O. Hansen; D. W. Higinbotham; W. Hinton; T. Horn; C. W. de Jager; X. Jiang; W. Korsch

We present the first measurement of the Q2 dependence of the neutron spin structure function g2(n) at five kinematic points covering 0.57 (GeV/c)2 < or = Q2 < or = 1.34 (GeV/c)2 at x approximately = 0.2. Though the naive quark-parton model predicts g2 = 0, nonzero values occur in more realistic models of the nucleon which include quark-gluon correlations, finite quark masses, or orbital angular momentum. When scattering from a noninteracting quark, g2(n) can be predicted using next-to-leading order fits to world data for g1(n). Deviations from this prediction provide an opportunity to examine QCD dynamics in nucleon structure. Our results show a positive deviation from this prediction at lower Q2, indicating that contributions such as quark-gluon interactions may be important. Precision data obtained for g1(n) are consistent with next-to-leading order fits to world data.


Physical Review Letters | 2014

JLab Measurement of the

A. Camsonne; M. Olson; N. Sparveris; A. Acha; K. Allada; J. Arrington; A. Baldwin; Suyong Choi; E. Chudakov; E. Cisbani; B. Craver; G. Lott; H. Q. Lu; P. Markowitz; S. Marrone; D. Meekins; R. Michaels; B. Mot; B. E. Norum; A. J. R. Puckett; X. Qian; O. Rondon; A. Saha; B. Sawatzky; J. Segal; M. Shabestari; A. Shahinyan; P. Solvignon; R. Suleiman; V. Sulkosky

The charge form factor of 4He has been extracted in the range 29u2009u2009fm(-2) ≤ Q2 ≤ 77u2009u2009fm(-2) from elastic electron scattering, detecting 4He recoil nuclei and electrons in coincidence with the high resolution spectrometers of the Hall A Facility of Jefferson Lab. The measurements have uncovered a second diffraction minimum for the form factor, which was predicted in the Q2 range of this experiment. The data are in qualitative agreement with theoretical calculations based on realistic interactions and accurate methods to solve the few-body problem.


Physical Review C | 2007

^4

Yi Qiang; John Annand; J. Arrington; Yakov Azimov; W. Bertozzi; Gordon D. Cates; Jian-Ping Chen; Seonho Choi; Eugene A. Chudakov; Francesco Cusanno; Cornelis De Jager; Martin B. Epstein; R. Feuerbach; F. Garibaldi; O. Gayou; R. Gilman; J. Gomez; D. Hamilton; J.-O. Hansen; D. W. Higinbotham; T. Holmstrom; M. Iodice; Xiaodong Jiang; M. K. Jones; John J. LeRose; R. Lindgren; Nilanga Liyanage; Demetrius Margaziotis; P. Markowitz; Vahe Mamyan

A high-resolution ({sigma}{sub instr.} = 1.5 MeV) search for narrow states ({Lambda} < 10 MeV) with masses of M{sub x} {approx} 1500-1850 MeV in ep {yields} e K{sup +} X, e K{sup -} X and e {pi}{sup +} X electroproduction at small angles and low Q{sup 2} was performed. These states would be candidate partner states of the reported {Theta}{sup +}(1540) pentaquark. No statistically significant signal was observed in any of the channels at 90% C.L. Upper limits on forward production were determined to be between 0.7% and 4.2% of the {Lambda}(1520) production cross section, depending on the channel and the assumed mass and width of the state.

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W. Bertozzi

Massachusetts Institute of Technology

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E. Chudakov

Massachusetts Institute of Technology

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O. Gayou

Massachusetts Institute of Technology

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R. Gilman

Massachusetts Institute of Technology

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J. P. Chen

Thomas Jefferson National Accelerator Facility

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T. Averett

Massachusetts Institute of Technology

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F. Garibaldi

Istituto Superiore di Sanità

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R. Lindgren

University of Virginia

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C. W. de Jager

Thomas Jefferson National Accelerator Facility

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J.-O. Hansen

Argonne National Laboratory

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