HBT Pion Interferometry with Phenomenological Mean Field Interaction(Nuclear Physics)
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概要
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To extract information on hadron production dynamics in the ultrarelativistic heavy ion collision, the space-time structure of the hadron source has been measured using Hanbury Brown and Twiss interferometry. We study the distortion of the source images due to the effect of a final state interaction. We describe the interaction, taking place during penetrating through a cloud formed by evaporating particles, in terms of a one-body mean field potential localized in the vicinity of the source region. By adopting the semiclassical method, the modification of the propagation of an emitted particle is examined. In analogy to the optical model applied to nuclear reactions, our phenomenological model has an imaginary part of the potential, which describes the absorption in the cloud. In this work, we focus on the pion interferometry and mean field interaction obtained using a phenomenological ππ forward scattering amplitude in the elastic channels. The p-wave scattering with ρ meson resonance leads to an attractive mean field interaction, and the presence of the absorptive part is mainly attributed to the formation of this resonance. We also incorporate a simple time dependence of the potential reflecting the dynamics of the evaporating source. Using the obtained potential, we examine how and to what extent the so-called HBT Gaussian radius is varied by the modification of the propagation.
- 2010-11-25
著者
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HATTORI Koichi
Institute of Physics, The University of Tokyo
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Hattori Koichi
Institute Of Physics The University Of Tokyo:high Energy Accelerator Research Organization (kek)
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HATTORI Koichi
Institute of Physics, University of Tokyo
関連論文
- HBT Pion Interferometry with Phenomenological Mean Field Interaction(Nuclear Physics)
- Distortion of HBT Images by Meson Clouds
- Distortion of the HBT Images by the Mean Field Potential(RHIC Phenomenology/Theory,New Frontiers in QCD 2008-Fundamental Problems in Hot and/or Dense Matter-)