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Title: Data analysis techniques, differential cross sections, and spin density matrix elements for the reaction γp → Φp

Abstract

High-statistics measurements of differential cross sections and spin density matrix elements for the reaction γ p → Φp have been made using the CLAS detector at Jefferson Lab. We cover center-of-mass energies (√s) from 1.97 to 2.84 GeV, with an extensive coverage in the Φ production angle. The high statistics of the data sample made it necessary to carefully account for the interplay between the Φ natural lineshape and effects of the detector resolution, that are found to be comparable in magnitude. We study both the charged- (Φ → K⁺K⁻) and neutral- (Φ → K0SK0L) $$K\bar{K}$$ decay modes of the Φ. Further, for the charged mode, we differentiate between the cases where the final K⁻ track is directly detected or its momentum reconstructed as the total missing momentum in the event. The two charged-mode topologies and the neutral-mode have different resolutions and are calibrated against each other. Extensive usage is made of kinematic fitting to improve the reconstructed Φ mass resolution. Our final results are reported in 10- and mostly 30-MeV-wide √s bins for the charged- and the neutral-mode, respectively. Possible effects from K⁺Λ* channels with p$$K\bar{K}$$ final-states are discussed. These present results constitute the most precise and extensive Φ photoproduction measurements to date and in conjunction with the ω photoproduction results recently published by CLAS, will greatly improve our understanding of low energy vector meson photoproduction.

Authors:
 [1];  [1];  [1];  [1];  [2];  [2];  [3];  [2];  [4];  [3];  [5];  [6];  [7];  [8];  [9];  [10];  [11];  [12];  [13];  [11] more »;  [11];  [7];  [14];  [15];  [16];  [17];  [16];  [18];  [19];  [20];  [7];  [3];  [11];  [21];  [22];  [23];  [6];  [6];  [6];  [11];  [21];  [4];  [24];  [5];  [20];  [20];  [25];  [26];  [5];  [24];  [14];  [21];  [27];  [28];  [6];  [18];  [29];  [28];  [14];  [1];  [30];  [2];  [31];  [4];  [32];  [33];  [28];  [34];  [14];  [35];  [36];  [36];  [2];  [37];  [2];  [38];  [2];  [8];  [17];  [4];  [1];  [4];  [29];  [2];  [39];  [4];  [29];  [3];  [40];  [3];  [1];  [5];  [12];  [28];  [11];  [28];  [26];  [2];  [41];  [17];  [20];  [42];  [43];  [44];  [4];  [3];  [8];  [8];  [45];  [5];  [4];  [29];  [10];  [41];  [23];  [15];  [46];  [18];  [5];  [18];  [10];  [1];  [29];  [23];  [11];  [20];  [11];  [37];  [28];  [36];  [47];  [12];  [21];  [48];  [14];  [14];  [21];  [49];  [1];  [8];  [20];  [50];  [37];  [24];  [21];  [24];  [2];  [21];  [15] « less
  1. Carnegie Mellon Univ., Pittsburgh, PA (United States)
  2. Old Dominion Univ., Norfolk, VA (United States)
  3. National Inst. of Nuclear Physics (INFN), Frascati (Italy). National Lab. of Frascati (INFN-LFN)
  4. Univ. of Glasgow, Scotland (United Kingdom)
  5. Commissariat a l'Energie Atomique et aux Energies Alternatives (CEA), Saclay (France). Inst. de Physique Nuclaeaire
  6. Argonne National Lab. (ANL), Argonne, IL (United States)
  7. Istituto Nazionale di Fisica Nucleare (INFN), Genova (Italy)
  8. Inst. of Theoretical and Experimental Physics (ITEP), Moscow (Russian Federation)
  9. Fairfield Univ., CT (United States)
  10. Florida International Univ., Miami, FL (United States)
  11. Thomas Jefferson National Accelerator Facility (TJNAF), Newport News, VA (United States)
  12. George Washington Univ., Washington, DC (United States)
  13. Univ. Tecnica Federico Santa Maria, Valparaiso (Chile); Thomas Jefferson National Accelerator Facility (TJNAF), Newport News, VA (United States)
  14. Ohio Univ., Athens, OH (United States)
  15. National Inst. of Nuclear Physics (INFN), Rome (Italy)
  16. Idaho State Univ., Pocatello, ID (United States)
  17. National Inst. of Nuclear Physics (INFN), Ferrara (Italy)
  18. Florida State Univ., Tallahassee, FL (United States)
  19. National Inst. of Nuclear Physics (INFN), Rome (Italy); Univ. di Roma, Rome (Italy)
  20. Yerevan Physics Inst. (YerPhI) (Armenia)
  21. Univ. of South Carolina, Columbia, SC (United States)
  22. Christopher Newport Univ., Newport News, VA (United States); Thomas Jefferson National Accelerator Facility (TJNAF), Newport News, VA (United States)
  23. Arizona State Univ., Tempe, AZ (United States)
  24. Univ. of Edinburgh, Scotland (United Kingdom)
  25. Univ. of Richmond, VA (United States)
  26. James Madison Univ., Harrisonburg, VA (Untied States)
  27. College of William and Mary, Williamsburg, VA (United States)
  28. Inst. de Physique Nucleaire (IPN), Orsay (France)
  29. Univ. of Connecticut, Storrs, CT (United States)
  30. Univ. of New Hampshire, Durham, NH (United States)
  31. Univ. of South Carolina, Columbia, SC (United States); George Washington Univ., Washington, DC (United States)
  32. Skobeltsyn Nuclear Physics Inst., Moscow (Russian Federation)
  33. Virginia Polytechnic Inst. and State Univ. (Virginia Tech), Blacksburg, VA (United States)
  34. Univ. of Connecticut, Storrs, CT (United States); Univ. Tecnica Federico Santa Maria, Valparaiso (Chile)
  35. Norfolk State Univ., VA (United States)
  36. Kyungpook National Univ., Daegu (Korea, Republic of)
  37. Catholic Univ. of America, Washington, DC (United States)
  38. Rensselaer Polytechnic Inst., Troy, NY (United States); Thomas Jefferson National Accelerator Facility (TJNAF), Newport News, VA (United States); Univ. Tecnica Federico Santa Maria, Valparaiso (Chile);
  39. Carnegie Mellon Univ., Pittsburgh, PA (United States); Washington and Jefferson College, Washington, PA (United States)
  40. Skobeltsyn Nuclear Physics Inst., Moscow (Russian Federation); Thomas Jefferson National Accelerator Facility (TJNAF), Newport News, VA (United States)
  41. National Inst. of Nuclear Physics (INFN), Genova (Italy)
  42. Univ. of South Carolina, Columbia, SC (United States); Kyungpook National Univ., Daegu (Korea, Republic of)
  43. Arizona State Univ., Tempe, AZ (United States); Thomas Jefferson National Accelerator Facility (TJNAF), Newport News, VA (United States)
  44. Univ. of Virginia, Charlottesville, VA (United States)
  45. California State Univ., Carson, CA (United States)
  46. National Inst. of Nuclear Physics (INFN), Frascati (Italy). National Lab. of Frascati (INFN-LFN); Thomas Jefferson National Accelerator Facility (TJNAF), Newport News, VA (United States)
  47. Rensselaer Polytechnic Inst., Troy, NY (United States)
  48. Univ. of Genova (Italy)
  49. Univ. of Connecticut, Storrs, CT (United States); Rensselaer Polytechnic Inst., Troy, NY (United States)
  50. Univ. Joseph Fornier, CNRS/IN2P3, Grenoble (France)
Publication Date:
Research Org.:
Thomas Jefferson National Accelerator Facility (TJNAF), Newport News, VA (United States)
Sponsoring Org.:
USDOE
Contributing Org.:
CLAS Collaboration
OSTI Identifier:
1132595
Grant/Contract Number:  
FG02-87ER40315; AC05-84ER40150
Resource Type:
Accepted Manuscript
Journal Name:
Physical Review C, Nuclear Physics
Additional Journal Information:
Journal Volume: 89; Journal Issue: 5; Journal ID: ISSN 0556-2813
Publisher:
American Physical Society (APS)
Country of Publication:
United States
Language:
English
Subject:
72 PHYSICS OF ELEMENTARY PARTICLES AND FIELDS

Citation Formats

Dey, B., Meyer, C. A., Bellis, M., Williams, M., Adhikari, K. P., Adikaram, D., Aghasyan, M., Amaryan, M. J., Anderson, M. D., Anefalos Pereira, S., Ball, J., Baltzell, N. A., Battaglieri, M., Bedlinskiy, I., Biselli, A. S., Bono, J., Boiarinov, S., Briscoe, W. J., Brooks, W. K., Burkert, V. D., Carman, D. S., Celentano, A., Chandavar, S., 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., Dugger, M., Dupre, R., El Alaoui, A., El Fassi, L., Elouadrhiri, L., Fedotov, G., Fegan, S., Fleming, J. A., Garçon, M., Gevorgyan, N., Ghandilyan, Y., Gilfoyle, G. P., Giovanetti, K. L., Girod, F. X., Glazier, D. I., Goetz, J. T., Gothe, R. W., Griffioen, K. A., Guidal, M., Hafidi, K., Hanretty, C., Harrison, N., Hattawy, M., Hicks, K., Ho, D., Holtrop, M., Hyde, C. E., Ilieva, Y., Ireland, D. G., Ishkhanov, B. S., Jenkins, D., Jo, H. S., Joo, K., Keller, D., Khandaker, M., Kim, A., Kim, W., Klein, A., Klein, F. J., Koirala, S., Kubarovsky, V., Kuhn, S. E., Kuleshov, S. V., Lenisa, P., Livingston, K., Lu, H., MacGregor, I. J.D., Markov, N., Mayer, M., McCracken, M. E., McKinnon, B., Mineeva, T., Mirazita, M., Mokeev, V., Montgomery, R. A., Moriya, K., Moutarde, H., Munevar, E., Munoz Camacho, C., Nadel-Turonski, P., Niccolai, S., Niculescu, G., Niculescu, I., Osipenko, M., Pappalardo, L. L., Paremuzyan, R., Park, K., Pasyuk, E., Peng, P., Phillips, J. J., Pisano, S., Pogorelko, O., Pozdniakov, S., Price, J. W., Procureur, S., Protopopescu, D., Puckett, A. J. R., Rimal, D., Ripani, M., Ritchie, B. G., Rizzo, A., Rossi, P., Roy, P., Sabatié, F., Saini, M. S., Schott, D., Schumacher, R. A., Seder, E., Senderovich, I., Sharabian, Y. G., Simonyan, A., Smith, E. S., Sober, D. I., Sokhan, D., Stepanyan, S. S., Stoler, P., Strakovsky, I. I., Strauch, S., Sytnik, V., Taiuti, M., Tang, W., Tkachenko, S., Ungaro, M., Vernarsky, B., Vlassov, A. V., Voskanyan, H., Voutier, E., Walford, N. K., Watts, D. P., Zachariou, N., Zana, L., Zhang, J., Zhao, Z. W., and Zonta, I. Data analysis techniques, differential cross sections, and spin density matrix elements for the reaction γp → Φp. United States: N. p., 2014. Web. doi:10.1103/PhysRevC.89.055208.
Dey, B., Meyer, C. A., Bellis, M., Williams, M., Adhikari, K. P., Adikaram, D., Aghasyan, M., Amaryan, M. J., Anderson, M. D., Anefalos Pereira, S., Ball, J., Baltzell, N. A., Battaglieri, M., Bedlinskiy, I., Biselli, A. S., Bono, J., Boiarinov, S., Briscoe, W. J., Brooks, W. K., Burkert, V. D., Carman, D. S., Celentano, A., Chandavar, S., 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., Dugger, M., Dupre, R., El Alaoui, A., El Fassi, L., Elouadrhiri, L., Fedotov, G., Fegan, S., Fleming, J. A., Garçon, M., Gevorgyan, N., Ghandilyan, Y., Gilfoyle, G. P., Giovanetti, K. L., Girod, F. X., Glazier, D. I., Goetz, J. T., Gothe, R. W., Griffioen, K. A., Guidal, M., Hafidi, K., Hanretty, C., Harrison, N., Hattawy, M., Hicks, K., Ho, D., Holtrop, M., Hyde, C. E., Ilieva, Y., Ireland, D. G., Ishkhanov, B. S., Jenkins, D., Jo, H. S., Joo, K., Keller, D., Khandaker, M., Kim, A., Kim, W., Klein, A., Klein, F. J., Koirala, S., Kubarovsky, V., Kuhn, S. E., Kuleshov, S. V., Lenisa, P., Livingston, K., Lu, H., MacGregor, I. J.D., Markov, N., Mayer, M., McCracken, M. E., McKinnon, B., Mineeva, T., Mirazita, M., Mokeev, V., Montgomery, R. A., Moriya, K., Moutarde, H., Munevar, E., Munoz Camacho, C., Nadel-Turonski, P., Niccolai, S., Niculescu, G., Niculescu, I., Osipenko, M., Pappalardo, L. L., Paremuzyan, R., Park, K., Pasyuk, E., Peng, P., Phillips, J. J., Pisano, S., Pogorelko, O., Pozdniakov, S., Price, J. W., Procureur, S., Protopopescu, D., Puckett, A. J. R., Rimal, D., Ripani, M., Ritchie, B. G., Rizzo, A., Rossi, P., Roy, P., Sabatié, F., Saini, M. S., Schott, D., Schumacher, R. A., Seder, E., Senderovich, I., Sharabian, Y. G., Simonyan, A., Smith, E. S., Sober, D. I., Sokhan, D., Stepanyan, S. S., Stoler, P., Strakovsky, I. I., Strauch, S., Sytnik, V., Taiuti, M., Tang, W., Tkachenko, S., Ungaro, M., Vernarsky, B., Vlassov, A. V., Voskanyan, H., Voutier, E., Walford, N. K., Watts, D. P., Zachariou, N., Zana, L., Zhang, J., Zhao, Z. W., & Zonta, I. Data analysis techniques, differential cross sections, and spin density matrix elements for the reaction γp → Φp. United States. https://doi.org/10.1103/PhysRevC.89.055208
Dey, B., Meyer, C. A., Bellis, M., Williams, M., Adhikari, K. P., Adikaram, D., Aghasyan, M., Amaryan, M. J., Anderson, M. D., Anefalos Pereira, S., Ball, J., Baltzell, N. A., Battaglieri, M., Bedlinskiy, I., Biselli, A. S., Bono, J., Boiarinov, S., Briscoe, W. J., Brooks, W. K., Burkert, V. D., Carman, D. S., Celentano, A., Chandavar, S., 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., Dugger, M., Dupre, R., El Alaoui, A., El Fassi, L., Elouadrhiri, L., Fedotov, G., Fegan, S., Fleming, J. A., Garçon, M., Gevorgyan, N., Ghandilyan, Y., Gilfoyle, G. P., Giovanetti, K. L., Girod, F. X., Glazier, D. I., Goetz, J. T., Gothe, R. W., Griffioen, K. A., Guidal, M., Hafidi, K., Hanretty, C., Harrison, N., Hattawy, M., Hicks, K., Ho, D., Holtrop, M., Hyde, C. E., Ilieva, Y., Ireland, D. G., Ishkhanov, B. S., Jenkins, D., Jo, H. S., Joo, K., Keller, D., Khandaker, M., Kim, A., Kim, W., Klein, A., Klein, F. J., Koirala, S., Kubarovsky, V., Kuhn, S. E., Kuleshov, S. V., Lenisa, P., Livingston, K., Lu, H., MacGregor, I. J.D., Markov, N., Mayer, M., McCracken, M. E., McKinnon, B., Mineeva, T., Mirazita, M., Mokeev, V., Montgomery, R. A., Moriya, K., Moutarde, H., Munevar, E., Munoz Camacho, C., Nadel-Turonski, P., Niccolai, S., Niculescu, G., Niculescu, I., Osipenko, M., Pappalardo, L. L., Paremuzyan, R., Park, K., Pasyuk, E., Peng, P., Phillips, J. J., Pisano, S., Pogorelko, O., Pozdniakov, S., Price, J. W., Procureur, S., Protopopescu, D., Puckett, A. J. R., Rimal, D., Ripani, M., Ritchie, B. G., Rizzo, A., Rossi, P., Roy, P., Sabatié, F., Saini, M. S., Schott, D., Schumacher, R. A., Seder, E., Senderovich, I., Sharabian, Y. G., Simonyan, A., Smith, E. S., Sober, D. I., Sokhan, D., Stepanyan, S. S., Stoler, P., Strakovsky, I. I., Strauch, S., Sytnik, V., Taiuti, M., Tang, W., Tkachenko, S., Ungaro, M., Vernarsky, B., Vlassov, A. V., Voskanyan, H., Voutier, E., Walford, N. K., Watts, D. P., Zachariou, N., Zana, L., Zhang, J., Zhao, Z. W., and Zonta, I. Tue . "Data analysis techniques, differential cross sections, and spin density matrix elements for the reaction γp → Φp". United States. https://doi.org/10.1103/PhysRevC.89.055208. https://www.osti.gov/servlets/purl/1132595.
@article{osti_1132595,
title = {Data analysis techniques, differential cross sections, and spin density matrix elements for the reaction γp → Φp},
author = {Dey, B. and Meyer, C. A. and Bellis, M. and Williams, M. and Adhikari, K. P. and Adikaram, D. and Aghasyan, M. and Amaryan, M. J. and Anderson, M. D. and Anefalos Pereira, S. and Ball, J. and Baltzell, N. A. and Battaglieri, M. and Bedlinskiy, I. and Biselli, A. S. and Bono, J. and Boiarinov, S. and Briscoe, W. J. and Brooks, W. K. and Burkert, V. D. and Carman, D. S. and Celentano, A. and Chandavar, S. and Colaneri, L. and Cole, P. L. and Contalbrigo, M. and Cortes, O. and Crede, V. and D'Angelo, A. and Dashyan, N. and De Vita, R. and De Sanctis, E. and Deur, A. and Djalali, C. and Doughty, D. and Dugger, M. and Dupre, R. and El Alaoui, A. and El Fassi, L. and Elouadrhiri, L. and Fedotov, G. and Fegan, S. and Fleming, J. A. and Garçon, M. and Gevorgyan, N. and Ghandilyan, Y. and Gilfoyle, G. P. and Giovanetti, K. L. and Girod, F. X. and Glazier, D. I. and Goetz, J. T. and Gothe, R. W. and Griffioen, K. A. and Guidal, M. and Hafidi, K. and Hanretty, C. and Harrison, N. and Hattawy, M. and Hicks, K. and Ho, D. and Holtrop, M. and Hyde, C. E. and Ilieva, Y. and Ireland, D. G. and Ishkhanov, B. S. and Jenkins, D. and Jo, H. S. and Joo, K. and Keller, D. and Khandaker, M. and Kim, A. and Kim, W. and Klein, A. and Klein, F. J. and Koirala, S. and Kubarovsky, V. and Kuhn, S. E. and Kuleshov, S. V. and Lenisa, P. and Livingston, K. and Lu, H. and MacGregor, I. J.D. and Markov, N. and Mayer, M. and McCracken, M. E. and McKinnon, B. and Mineeva, T. and Mirazita, M. and Mokeev, V. and Montgomery, R. A. and Moriya, K. and Moutarde, H. and Munevar, E. and Munoz Camacho, C. and Nadel-Turonski, P. and Niccolai, S. and Niculescu, G. and Niculescu, I. and Osipenko, M. and Pappalardo, L. L. and Paremuzyan, R. and Park, K. and Pasyuk, E. and Peng, P. and Phillips, J. J. and Pisano, S. and Pogorelko, O. and Pozdniakov, S. and Price, J. W. and Procureur, S. and Protopopescu, D. and Puckett, A. J. R. and Rimal, D. and Ripani, M. and Ritchie, B. G. and Rizzo, A. and Rossi, P. and Roy, P. and Sabatié, F. and Saini, M. S. and Schott, D. and Schumacher, R. A. and Seder, E. and Senderovich, I. and Sharabian, Y. G. and Simonyan, A. and Smith, E. S. and Sober, D. I. and Sokhan, D. and Stepanyan, S. S. and Stoler, P. and Strakovsky, I. I. and Strauch, S. and Sytnik, V. and Taiuti, M. and Tang, W. and Tkachenko, S. and Ungaro, M. and Vernarsky, B. and Vlassov, A. V. and Voskanyan, H. and Voutier, E. and Walford, N. K. and Watts, D. P. and Zachariou, N. and Zana, L. and Zhang, J. and Zhao, Z. W. and Zonta, I.},
abstractNote = {High-statistics measurements of differential cross sections and spin density matrix elements for the reaction γ p → Φp have been made using the CLAS detector at Jefferson Lab. We cover center-of-mass energies (√s) from 1.97 to 2.84 GeV, with an extensive coverage in the Φ production angle. The high statistics of the data sample made it necessary to carefully account for the interplay between the Φ natural lineshape and effects of the detector resolution, that are found to be comparable in magnitude. We study both the charged- (Φ → K⁺K⁻) and neutral- (Φ → K0SK0L) $K\bar{K}$ decay modes of the Φ. Further, for the charged mode, we differentiate between the cases where the final K⁻ track is directly detected or its momentum reconstructed as the total missing momentum in the event. The two charged-mode topologies and the neutral-mode have different resolutions and are calibrated against each other. Extensive usage is made of kinematic fitting to improve the reconstructed Φ mass resolution. Our final results are reported in 10- and mostly 30-MeV-wide √s bins for the charged- and the neutral-mode, respectively. Possible effects from K⁺Λ* channels with p$K\bar{K}$ final-states are discussed. These present results constitute the most precise and extensive Φ photoproduction measurements to date and in conjunction with the ω photoproduction results recently published by CLAS, will greatly improve our understanding of low energy vector meson photoproduction.},
doi = {10.1103/PhysRevC.89.055208},
journal = {Physical Review C, Nuclear Physics},
number = 5,
volume = 89,
place = {United States},
year = {Tue May 27 00:00:00 EDT 2014},
month = {Tue May 27 00:00:00 EDT 2014}
}

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A study of elastic photoproduction of low massK + K ? pairs from hydrogen in the energy range 2.8?4.8 GeV
journal, March 1982

  • Barber, D. P.; Dainton, J. B.; Lee, L. C. Y.
  • Zeitschrift f�r Physik C Particles and Fields, Vol. 12, Issue 1
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Measurement of elastic φ photoproduction at HERA
journal, June 1996


Near-Threshold Diffractive ϕ -Meson Photoproduction from the Proton
journal, October 2005


Photoproduction of φ ( 1020 ) Mesons on the Proton at Large Momentum Transfer
journal, November 2000


Measurement of the D * ( 2010 ) + Meson Width and the D * ( 2010 ) + D 0 Mass Difference
journal, September 2013


Measurement of the D * ( 2010 ) + natural linewidth and the D * ( 2010 ) + D 0 mass difference
journal, September 2013


Measurement of spin-density matrix elements for ϕ -meson photoproduction from protons and deuterons near threshold
journal, July 2010


Polarization observables in vector meson photoproduction
journal, February 1996

  • Pichowsky, Michael; Şavkli, Çetin; Tabakin, Frank
  • Physical Review C, Vol. 53, Issue 2
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The bremsstrahlung tagged photon beam in Hall B at JLab
journal, February 2000

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  • Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, Vol. 440, Issue 2
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The CEBAF large acceptance spectrometer (CLAS)
journal, May 2003

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  • Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, Vol. 503, Issue 3
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Differential cross sections and spin density matrix elements for the reaction γ p p ω
journal, December 2009


Partial wave analysis of the reaction γ p p ω and the search for nucleon resonances
journal, December 2009


Differential cross sections for the reactions γ p p η and γ p p η '
journal, October 2009


Differential cross section and recoil polarization measurements for the γ p K + Λ reaction using CLAS at Jefferson Lab
journal, February 2010


Differential cross sections and recoil polarizations for the reaction γ p K + Σ 0
journal, August 2010


Measurement of the Σ π photoproduction line shapes near the Λ ( 1405 )
journal, March 2013


Multivariate side-band subtraction using probabilistic event weights
journal, October 2009


On a Theory of Particles with Half-Integral Spin
journal, July 1941


Review of Particle Physics
journal, July 2012


Spin information from vector-meson decay in photoproduction
journal, August 1998


Spin effects and baryon resonance dynamics in φ-meson photoproduction at few GeV
journal, June 2003


Photoproduction of Meson and Baryon Resonances at Energies up to 5.8 GeV
text, January 1968

  • Collaboration, Aachen-Berlin-Bonn-Hamburg-Heidelberg-Munich
  • Deutsches Elektronen-Synchrotron, DESY, Hamburg
  • DOI: 10.3204/pubdb-2017-02807

Review of Particle Physics
text, January 2008


Spin Information from Vector-Meson Decay in Photoproduction
book, January 1999


Review of Particle Physics
text, January 2018


Review of Particle Physics
text, January 2012

  • Beringer, J.; Arguin, J.; Barnett, R.
  • Deutsches Elektronen-Synchrotron, DESY, Hamburg
  • DOI: 10.3204/phppubdb-24149

Multivariate side-band subtraction using probabilistic event weights
text, January 2008


Polarization observables in vector meson photoproduction
text, January 1995


Spin Information from Vector-Meson Decay in Photoproduction
text, January 1998


Works referencing / citing this record:

Photoproduction of the f 1 ( 1285 ) meson
journal, June 2016


First Results from the BGO–OD Experiment at ELSA
journal, August 2018


Pomeron, nucleon-resonance, and ( 0 + , 0 , 1 + ) -meson contributions in ϕ -meson photoproduction
journal, December 2019


Towards a complete study of central exclusive production of K + K pairs in proton-proton collisions within the tensor Pomeron approach
journal, July 2018


Search for a hidden strange baryon-meson bound state from ϕ production in a nuclear medium
journal, May 2017


Diffractive Vector Photoproduction using Holographic QCD
text, January 2018