A realistic coalescence model for deuteron production
Maximilian Mahlein, Luca Barioglio, Francesca Bellini, Laura, Fabbietti, Chiara Pinto, Bhawani Singh, Sushanta Tripathy

TL;DR
This paper introduces a new coalescence model based on the Wigner function formalism, validated against experimental data, to improve understanding of (anti)deuteron production in high-energy collisions and its implications for nuclear physics and astrophysics.
Contribution
The paper presents a realistic coalescence afterburner model incorporating source measurements and wavefunction sensitivity, advancing the microscopic understanding of deuteron production.
Findings
The model accurately reproduces experimental deuteron spectra.
Deuteron spectra are sensitive to the choice of wavefunction, with Argonne v18 providing the best fit.
The model can be extended to study heavier nuclei and different collision energies.
Abstract
A microscopic understanding of (anti)deuteron production in hadron-hadron collisions is the subject of many experimental and theoretical efforts in nuclear physics. This topic is also very relevant for astrophysics, since the rare production of antinuclei in our Universe could be a doorway to discover new physics. In this work, we describe a new coalescence afterburner for event generators based on the Wigner function formalism and we apply it to the (anti)deuteron case, taking into account a realistic particle emitting source. The model performance is validated using the EPOS and PYTHIA event generators applied to proton-proton collisions at the centre-of-mass energy 13 TeV, triggered for high multiplicity events, and the experimental data measured by ALICE in the same collision system. The model relies on the direct measurement of the particle emitting source carried out…
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Taxonomy
TopicsHigh-Energy Particle Collisions Research · Particle physics theoretical and experimental studies · Quantum Chromodynamics and Particle Interactions
