Jet-Induced Enhancement of Deuteron Production in and -Pb Collisions at the LHC
arXiv:2408.01634
Abstract
Jet-associated deuteron production in collisions at TeV and -Pb collisions at TeV is studied in the coalescence model by using the phase-space information of proton and neutron pairs from a multiphase transport (AMPT) model at the kinetic freezeout. In the low transverse momentum () region GeV/, where is the mass number of a nucleus, the in-jet coalescence factor for deuteron production, given by the ratio of the in-jet deuteron number to the square of the in-jet proton number, is found to be larger than the coalescence factor in the medium perpendicular to the jet by a factor of about 10 in collisions and of 25 in Pb collisions, which are consistent with the ALICE measurements at the LHC. Such large low-momentum enhancements mainly come from coalescence of nucleons inside the jet with the medium nucleons. Coalescence of nucleons inside the jet dominates deuteron production only at the higher region of GeV/, where both the yield ratio of deuteron to proton numbers and the are also significantly larger in the jet direction than in the direction perpendicular to the jet due to the strong collinear correlation among particles produced from jet fragmentation. Studying jet-associated deuteron production in relativistic nuclear collisions thus opens up a new window to probe the phase-space structure of nucleons inside jets.