Hadron-ion collisions in Pythia and the vector-meson dominance model for photoproduction
Helenius, I., & Utheim, M. (2024). Hadron-ion collisions in Pythia and the vector-meson dominance model for photoproduction. European Physical Journal C, 84, Article 1155. https://doi.org/10.1140/epjc/s10052-024-13543-6
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European Physical Journal CDate
2024Copyright
© The Author(s) 2024
We present an extension to the Pythia Monte Carlo event generator that enables simulations of collisions between a generic hadron beam on a nuclear target with energy variation in event-by-event basis. This builds upon Pythia ’s module for heavy ions, Angantyr, as well as previous work on simulating hadron-proton collisions. As such, the extensions in this work are largely technical, except for a rudimentary model for hadronic fluctuations. With hadron-ion simulations, we implement an explicit vector-meson dominance (VMD) model that can be used to simulate interactions of hadronic component of real photons in photo-nuclear collisions. Such processes can be studied in ultra-peripheral heavy-ion collisions and in the future also with the upcoming Electron-Ion Collider. Our work also has applications to hadronic showers, e.g. air showers initiated by high-energy cosmic rays. We first validate the VMD model by comparing to HERA photoproduction data on proton target. Then we apply this to generate events for ultra-peripheral heavy-ion collisions at the LHC and present the results corresponding to the event-selection criteria matching to a recent ATLAS analysis. We find that single-particle multiplicity and rapidity distributions are well in line with the measured ones. We also construct the Fourier coefficients from two-particle correlations for the simulated events and study whether the resulting azimuthal anisotropies are consistent with the ATLAS results.
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Springer NatureISSN Search the Publication Forum
1434-6044Publication in research information system
https://converis.jyu.fi/converis/portal/detail/Publication/243983346
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Related funder(s)
Research Council of Finland; European CommissionFunding program(s)
Academy Research Fellow, AoF; ERC Advanced Grant
The content of the publication reflects only the author’s view. The funder is not responsible for any use that may be made of the information it contains.
Additional information about funding
We acknowledge the financial support from the Research Council of Finland, Project No. 331545, and through the Centre of Excellence in Quark Matter. The reported work is associated with the European Research Council project ERC-2018-ADG-835105 YoctoLHC.License
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