Browsing by Author "Pereira, S. Anefalos"
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Publication Measurement of two-photon exchange effect by comparing elastic e±p cross sections(2017-06-01) ;Rimal, D. ;Adikaram, D. ;Raue, B. A. ;Weinstein, L. B. ;Arrington, J. ;Brooks, W. K. ;Ungaro, M. ;Adhikari, K. P. ;Afanasev, A. V. ;Akbar, Z. ;Pereira, S. Anefalos ;Badui, R. A. ;Ball, J. ;Baltzell, N. A. ;Battaglieri, M. ;Batourine, V. ;Bedlinskiy, I. ;Biselli, A. S. ;Boiarinov, S. ;Briscoe, W. J. ;Bültmann, S. ;Burkert, V. D. ;Carman, D. S. ;Celentano, A. ;Chetry, T. ;Ciullo, G. ;Clark, L. ;Colaneri, L. ;Cole, P. L. ;Compton, N. ;Contalbrigo, M. ;Cortes, O. ;Crede, V. ;D'Angelo, A. ;Dashyan, N. ;De Vita, R. ;Deur, A. ;Djalali, C. ;Dupre, R. ;Egiyan, H.; ;Fassi, L. El ;Eugenio, P. ;Fanchini, E. ;Fedotov, G. ;Fersch, R. ;Filippi, A. ;Fleming, J. A. ;Forest, T. A. ;Fradi, A. ;Gevorgyan, N. ;Ghandilyan, Y. ;Gilfoyle, G. P. ;Giovanetti, K. L. ;Girod, F. X. ;Gleason, C. ;Gohn, W. ;Golovatch, E. ;Gothe, R. W. ;Griffioen, K. A. ;Guo, L. ;Hafidi, K. ;Hanretty, C. ;Harrison, N. ;Hattawy, M. ;Heddle, D. ;Hicks, K. ;Holtrop, M. ;Hughes, S. M. ;Ilieva, Y. ;Ireland, D. G. ;Ishkhanov, B. S. ;Isupov, E. L. ;Jenkins, D. ;Jiang, H. ;Joosten, S. ;Keller, D. ;Khachatryan, G. ;Khandaker, M. ;Kim, W. ;Klein, A. ;Klein, F. J. ;Kubarovsky, V. ;Kuhn, S. E.; ;Lanza, L. ;Lenisa, P. ;Livingston, K. ;Lu, H. Y. ;Macgregor, I. J.D. ;Markov, N. ;McKinnon, B. ;Mestayer, M. D. ;Mirazita, M. ;Mokeev, V. ;Movsisyan, A. ;Munevar, E. ;Camacho, C. Munoz ;Nadel-Turonski, P.Ni, A.The electromagnetic form factors of the proton measured by unpolarized and polarized electron scattering experiments show a significant disagreement that grows with the squared four-momentum transfer (Q²). Calculations have shown that the two measurements can be largely reconciled by accounting for the contributions of two-photon exchange (TPE). TPE effects are not typically included in the standard set of radiative corrections since theoretical calculations of the TPE effects are highly model dependent, and, until recently, no direct evidence of significant TPE effects has been observed. We measured the ratio of positron-proton to electron-proton elastic-scattering cross sections in order to determine the TPE contribution to elastic electron-proton scattering and thereby resolve the proton electric form factor discrepancy. We produced a mixed simultaneous electron-positron beam in Jefferson Lab’s Hall B by passing the 5.6-GeV primary electron beam through a radiator to produce a bremsstrahlung photon beam and then passing the photon beam through a converter to produce electron-positron pairs. The mixed electron-positron (lepton) beam with useful energies from approximately 0.85 to 3.5 GeV then struck a 30-cm-long liquid hydrogen (LH₂) target located within the CEBAF Large Acceptance Spectrometer (CLAS). By detecting both the scattered leptons and the recoiling protons, we identified and reconstructed elastic scattering events and determined the incident lepton energy. A detailed description of the experiment is presented. We present previously unpublished results for the quantity R₂γ, the TPE correction to the elastic-scattering cross section, at Q² ≈ 0.85 and 1.45 GeV² over a large range of virtual photon polarization ε. Our results, along with recently published results from VEPP-3, demonstrate a nonzero contribution from TPE effects and are in excellent agreement with the calculations that include TPE effects and largely reconcile the form-factor discrepancy up to Q² ≈ 2 GeV². These data are consistent with an increase in R₂γ with decreasing ε at Q² ≈ 0.85 and 1.45 GeV². There are indications of a slight increase in R₂γ with Q².Scopus© Citations 51 - Some of the metrics are blocked by yourconsent settings
Publication Measurement of unpolarized and polarized cross sections for deeply virtual Compton scattering on the proton at Jefferson Laboratory with CLAS(2018-10-09) ;Hirlinger Saylor, N. ;Guegan, B. ;Burkert, V. D. ;Elouadrhiri, L. ;Garçon, M. ;Girod, F. X. ;Guidal, M. ;Jo, H. S. ;Kubarovsky, V. ;Niccolai, S. ;Stoler, P. ;Adhikari, K. P. ;Adhikari, S. ;Akbar, Z. ;Amaryan, M. J. ;Pereira, S. Anefalos ;Ball, J. ;Balossino, I. ;Baltzell, N. A. ;Barion, L. ;Battaglieri, M. ;Batourine, V. ;Bedlinskiy, I. ;Biselli, A. S. ;Boiarinov, S. ;Briscoe, W. J.; ;Bültmann, S. ;Cao, F. ;Carman, D. S. ;Celentano, A. ;Charles, G. ;Chetry, T. ;Ciullo, G. ;Clary, Brandon A. ;Cole, P. L. ;Contalbrigo, M. ;Cortes, O. ;D'Angelo, A. ;Dashyan, N. ;De Vita, R. ;Defurne, M. ;Deur, A. ;Diehl, S. ;Djalali, C. ;Dupre, R. ;Egiyan, H.; ;Fassi, L. El ;Eugenio, P. ;Fedotov, G. ;Fersch, R. ;Filippi, A. ;Forest, T. A. ;Fradi, A. ;Gavalian, G. ;Gevorgyan, N. ;Ghandilyan, Y. ;Gilfoyle, G. P. ;Giovanetti, K. L. ;Gleason, C. ;Gohn, W. ;Golovatch, E. ;Gothe, R. W. ;Griffioen, K. A. ;Guo, L. ;Hafidi, K.; ;Hanretty, C. ;Harrison, N. ;Hattawy, M. ;Heddle, D. ;Hicks, K. ;Holtrop, M. ;Ilieva, Y. ;Ireland, D. G. ;Ishkhanov, B. S. ;Isupov, E. L. ;Jenkins, D. ;Johnston, S. ;Joo, K. ;Joosten, S. ;Kabir, M. L. ;Keller, D. ;Khachatryan, G. ;Khachatryan, M. ;Khandaker, M. ;Kim, A. ;Kim, W. ;Klein, A. ;Klein, F. J. ;Kuhn, S. E.; ;Lanza, L. ;Lenisa, P. ;Livingston, K. ;Lu, H. Y. ;Macgregor, I. J.D. ;Markov, N.This paper reports the measurement of polarized and unpolarized cross sections for the ep → e'p'γ reaction, which is composed of deeply virtual Compton scattering (DVCS) and Bethe-Heitler (BH) processes, at an electron beam energy of 5.88 GeV at the Thomas Jefferson National Accelerator Facility using the Large Acceptance Spectrometer CLAS. The unpolarized cross sections and polarized cross section differences have been measured over broad kinematics, 0.10 < x_B < 0.58, 1.0 < Q² < 4.8 GeV², and 0.09 < -t < 2.00 GeV². The results are found to be consistent with previous CLAS data, and these new data are discussed in the framework of the generalized parton distribution approach. Calculations with two widely used phenomenological models are approximately compatible with the experimental results over a large portion of the kinematic range of the data.Scopus© Citations 15 - Some of the metrics are blocked by yourconsent settings
Publication Measurements of ep → e'π⁺n at 1.6 < W < 2.0 GeV and extraction of nucleon resonance electrocouplings at CLAS MEASUREMENTS of ep→e′π+n ⋯ K. PARK et al.(2015-04-13) ;Park, K. ;Aznauryan, I. G. ;Burkert, V. D. ;Adhikari, K. P. ;Amaryan, M. J. ;Pereira, S. Anefalos ;Avakian, H. ;Battaglieri, M. ;Badui, R. ;Bedlinskiy, I. ;Biselli, A. S. ;Bono, J. ;Briscoe, W. J.; ;Carman, D. S. ;Celentano, A. ;Chandavar, S. ;Charles, G. ;Colaneri, L. ;Cole, P. L. ;Contalbrigo, M. ;Cortes, O. ;Crede, V. ;D'Angelo, A. ;Dashyan, N. ;De Vita, R. ;De Sanctis, E. ;Deur, A. ;Djalali, C. ;Doughty, D. ;Dupre, R. ;Egiyan, H.; ;Elouadrhiri, L. ;Fassi, L. El ;Eugenio, P. ;Fedotov, G. ;Fegan, S. ;Fersch, R. ;Filippi, A. ;Fleming, J. A. ;Garillon, B. ;Garçon, M. ;Gevorgyan, N. ;Gilfoyle, G. P. ;Giovanetti, K. L. ;Girod, F. X. ;Joo, H. S. ;Goetz, J. T. ;Golovatch, E. ;Gothe, R. W. ;Griffioen, K. A. ;Guegan, B. ;Guidal, M. ;Guo, L.; ;Hanretty, C. ;Hattawy, M. ;Hicks, K. ;Holtrop, M. ;Hughes, S. M. ;Hyde, C. E. ;Ilieva, Y. ;Ireland, D. G. ;Ishkhanov, B. S. ;Isupov, E. L. ;Jenkins, D. ;Jiang, H. ;Jo, H. S. ;Joo, K. ;Joosten, S. ;Keller, D. ;Khandaker, M. ;Kim, A. ;Kim, W. ;Klein, A. ;Klein, F. J. ;Kubarovsky, V. ;Kuhn, S. E.; ;Lenisa, P. ;Livingston, K. ;Lu, H. Y. ;Macgregor, I. J.D. ;Markov, N. ;Martinez, D. ;McKinnon, B. ;Mokeev, V. ;Montgomery, R. A. ;Moutarde, H. ;Camacho, C. Munoz ;Nadel-Turonski, P. ;Niccolai, S. ;Niculescu, G. ;Niculescu, I. ;Osipenko, M. ;Ostrovidov, A. I. ;Paolone, M. ;Pasyuk, E.Peng, P.Differential cross sections of the exclusive process ep → e'π⁺n were measured with good precision in the range of the photon virtuality Q² = 1.8-4.5 GeV² and the invariant mass range of the π⁺n final state W = 1.6-2.0 GeV using the Continuous Electron Beam Accelerator Facility Large Acceptance Spectrometer. Data were collected with nearly complete coverage in the azimuthal and polar angles of the nπ⁺ center-of-mass system. More than 37000 cross-section points were measured. The contributions of the isospin I = 1/2 resonances N(1675)5/2⁻, N(1680)5/2⁺, and N(1710)1/2⁺ were extracted at different values of Q² using a single-channel, energy-dependent resonance amplitude analysis. Two different approaches, the unitary isobar model and the fixed-t dispersion relations, were employed in the analysis. We observe significant strength of the N(1675)5/2⁻ in the A₁/₂ amplitude, which is in strong disagreement with quark models that predict both transverse amplitudes to be strongly suppressed. For the N(1680)5/2⁺ we observe a slow changeover from the dominance of the A₃/₂ amplitude at the real photon point (Q² = 0) to a Q² where A₁/₂ begins to dominate. The scalar amplitude S₁/₂ drops rapidly with Q² consistent with quark model prediction. For the N(1710)1/2⁺ resonance our analysis shows significant strength for the A₁/₂ amplitude at Q² < 2.5 GeV².Scopus© Citations 56
