Abstract
We report the first beam-target double-polarization asymmetries in the γ+n(p)→π-+p(p) reaction spanning the nucleon resonance region from invariant mass W=1500 to 2300 MeV. Circularly polarized photons and longitudinally polarized deuterons in solid hydrogen deuteride (HD) have been used with the CEBAF Large Acceptance Spectrometer (CLAS) at Jefferson Lab. The exclusive final state has been extracted using three very different analyses that show excellent agreement, and these have been used to deduce the E polarization observable for an effective neutron target. These results have been incorporated into new partial wave analyses and have led to significant revisions for several γnN∗ resonance photocouplings.
Original language | English |
---|---|
Article number | 242002 |
Number of pages | 6 |
Journal | Physical Review Letters |
Volume | 118 |
Issue number | 24 |
DOIs | |
Publication status | Published - 16 Jun 2017 |
Bibliographical note
© 2017 American Physical Society. Uploaded in accordance with the publisher’s self-archiving policy. Further copying may not be permitted; contact the publisher for details.Access to Document
- PhysRevLett.118.242002
© 2017 American Physical Society. Uploaded in accordance with the publisher’s self-archiving policy. Further copying may not be permitted; contact the publisher for details
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In: Physical Review Letters, Vol. 118, No. 24, 242002, 16.06.2017.
Research output: Contribution to journal › Article › peer-review
TY - JOUR
T1 - Beam-Target Helicity Asymmetry for γ (over-right-arrow) n (over-right-arrow) → π − p in the N* Resonance Region
AU - Ho, D.
AU - Peng, P.
AU - Bass, C.
AU - Collins, P.
AU - D'Angelo, A.
AU - Deur, A.
AU - Fleming, J.
AU - Hanretty, C.
AU - Kageya, T.
AU - Khandaker, M.
AU - Klein, F. J.
AU - Klempt, E.
AU - Laine, V.
AU - Lowry, M. M.
AU - Lu, H.
AU - Nepali, C.
AU - Nikonov, V. A.
AU - O'Connell, T.
AU - Sandorfi, A. M.
AU - Sarantsev, A. V.
AU - Schumacher, R. A.
AU - Strakovsky, I. I.
AU - Svarc, A.
AU - Walford, N. K.
AU - Wei, X.
AU - Whisnant, C. S.
AU - Workman, R. L.
AU - Zonta, I.
AU - Adhikari, K. P.
AU - Adikaram, D.
AU - Akbar, Z.
AU - Amaryan, M. J.
AU - Pereira, S. Anefalos
AU - Avakian, H.
AU - Ball, J.
AU - Bashkanov, M.
AU - Battaglieri, M.
AU - Batourine, V.
AU - Bedlinskiy, I.
AU - Biselli, A.
AU - Briscoe, W. J.
AU - Burkert, V. D.
AU - Carman, D. S.
AU - Celentano, A.
AU - Charles, G.
AU - Chetry, T.
AU - Ciullo, G.
AU - Clark, L.
AU - Colaneri, L.
AU - Cole, P. L.
AU - Contalbrigo, M.
AU - Crede, V.
AU - Dashyan, N.
AU - De Sanctis, E.
AU - De Vita, R.
AU - Djalali, C.
AU - Dupre, R.
AU - El Alaoui, A.
AU - El Fassi, L.
AU - Elouadrhiri, L.
AU - Eugenio, P.
AU - Fedotov, G.
AU - Fegan, S.
AU - Fersch, R.
AU - Filippi, A.
AU - Fradi, A.
AU - Ghandilyan, Y.
AU - Gilfoyle, G. P.
AU - Girod, F. X.
AU - Glazier, D. I.
AU - Gleason, C.
AU - Gohn, W.
AU - Golovatch, E.
AU - Gothe, R. W.
AU - Griffioen, K. A.
AU - Guidal, M.
AU - Guo, L.
AU - Hakobyan, H.
AU - Harrison, N.
AU - Hattawy, M.
AU - Hicks, K.
AU - Holtrop, M.
AU - Hughes, S. M.
AU - Ilieva, Y.
AU - Ireland, D. G.
AU - Ishkhanov, B. S.
AU - Isupov, E. L.
AU - Jenkins, D.
AU - Jiang, H.
AU - Jo, H. S.
AU - Joo, K.
AU - Joosten, S.
AU - Keller, D.
AU - Khachatryan, G.
AU - Kim, A.
AU - Kim, W.
AU - Klein, A.
AU - Kubarovsky, V.
AU - Kuleshov, S. V.
AU - Lanza, L.
AU - Lenisa, P.
AU - Livingston, K.
AU - MacGregor, I. J. D.
AU - Markov, N.
AU - McKinnon, B.
AU - Mineeva, T.
AU - Mokeev, V.
AU - Montgomery, R. A.
AU - Movsisyan, A.
AU - Camacho, C. Munoz
AU - Murdoch, G.
AU - Niccolai, S.
AU - Niculescu, G.
AU - Osipenko, M.
AU - Paolone, M.
AU - Paremuzyan, R.
AU - Park, K.
AU - Pasyuk, E.
AU - Phelps, W.
AU - Pogorelko, O.
AU - Price, J. W.
AU - Procureur, S.
AU - Protopopescu, D.
AU - Ripani, M.
AU - Riser, D.
AU - Ritchie, B. G.
AU - Rizzo, A.
AU - Rosner, G.
AU - Sabatie, F.
AU - Salgado, C.
AU - Sharabian, Y. G.
AU - Skorodumina, Iu.
AU - Smith, G. D.
AU - Sober, D. I.
AU - Sokhan, D.
AU - Sparveris, N.
AU - Strauch, S.
AU - Tian, Ye
AU - Torayev, B.
AU - Ungaro, M.
AU - Voskanyan, H.
AU - Voutier, E.
AU - Watts, D. P.
AU - Wood, M. H.
AU - Zachariou, N.
AU - Zhang, J.
AU - Zhao, Z. W.
AU - Collaboration, C. L. A. S.
N1 - © 2017 American Physical Society. Uploaded in accordance with the publisher’s self-archiving policy. Further copying may not be permitted; contact the publisher for details.
PY - 2017/6/16
Y1 - 2017/6/16
N2 - We report the first beam-target double-polarization asymmetries in the γ+n(p)→π-+p(p) reaction spanning the nucleon resonance region from invariant mass W=1500 to 2300 MeV. Circularly polarized photons and longitudinally polarized deuterons in solid hydrogen deuteride (HD) have been used with the CEBAF Large Acceptance Spectrometer (CLAS) at Jefferson Lab. The exclusive final state has been extracted using three very different analyses that show excellent agreement, and these have been used to deduce the E polarization observable for an effective neutron target. These results have been incorporated into new partial wave analyses and have led to significant revisions for several γnN∗ resonance photocouplings.
AB - We report the first beam-target double-polarization asymmetries in the γ+n(p)→π-+p(p) reaction spanning the nucleon resonance region from invariant mass W=1500 to 2300 MeV. Circularly polarized photons and longitudinally polarized deuterons in solid hydrogen deuteride (HD) have been used with the CEBAF Large Acceptance Spectrometer (CLAS) at Jefferson Lab. The exclusive final state has been extracted using three very different analyses that show excellent agreement, and these have been used to deduce the E polarization observable for an effective neutron target. These results have been incorporated into new partial wave analyses and have led to significant revisions for several γnN∗ resonance photocouplings.
UR - http://www.scopus.com/inward/record.url?scp=85020502186&partnerID=8YFLogxK
U2 - 10.1103/PhysRevLett.118.242002
DO - 10.1103/PhysRevLett.118.242002
M3 - Article
SN - 0031-9007
VL - 118
JO - Physical Review Letters
JF - Physical Review Letters
IS - 24
M1 - 242002
ER -