Dip-Bump Structure in Proton's Single Diffractive Dissociation at the Large Hadron Collider
arXiv:2406.01735 · doi:10.3390/universe10050208
Abstract
By extending the dipole Pomeron (DP) model, successful in describing elastic nucleon-nucleon scattering, to proton single diffractive dissociation (SD), we predict a dip-bump structure in the squared four-momentum transfer () distribution of proton's SD. Structures in the distribution of single diffractive dissociation are predicted around GeV at LHC energies in the range of 3 GeV 7 GeV. Apart from the dependence on (total energy squared) and (squared momentum transfer), we predict also a dependence on missing masses. We include the minimum set of Regge trajectories, namely the Pomeron and the Odderon, indispensable at the LHC. Further generalization, e.g., by the inclusion of non-leading Regge trajectories, is straightforward. The present model contains two types of Regge trajectories: those connected with -channel exchanges (the Pomeron, the Odderon, and non-leading (secondary) reggeons) appearing at small and moderate , where they are real and nearly linear, as well as direct-channel trajectories related to missing masses. In this paper, we concentrate on structures in neglecting (for the time being) resonances in .
17 pages, 14 figures, 3 tables; presented at ISMD 2024, Gyöngyös, Hungary