arXiv:2511.03638·v1·Nuclear Theory
Probing the structure of from the elliptic flow in p-Pb collisions at the LHC
Yili Wang🇨🇳 · Wenbin Zhao🇨🇳 · Che Ming Ko🇺🇸 · Fengkun Guo🇨🇳 · Ju-Jun Xie🇨🇳 · Huichao Song🇨🇳
Abstract
The is a light scalar meson whose internal structure remains under debate and investigation. Assuming that the is a molecule that can only survive at the kinetic freeze-out of the evolving bulk matter, we implement the coalescence model to study its transverse momentum () spectra and elliptic flow () in high-multiplicity p-Pb collisions at TeV. Using the well-tuned kaon phase-space distributions from the Hydro-Coal-Frag model, our coalescence calculations with reasonable values for the radius successfully reproduce the elliptic flow measured by CMS over the range GeV and also agree with the -spectra from ALICE. These results in heavy ion collisions are consistent with the molecular picture of the . We also find that the number-of-constituent scaling of for the is violated in p-Pb collisions at the LHC because most are produced from the coalescence of kaons that have different momenta. Our study demonstrates the necessity of realistic coalescence model calculations and also explains why the CMS interpretation of the as an ordinary meson is no longer valid by interpreting the measured with a simple scaling formula based on the assumption of equal momentum coalescence. The investigation also provides a novel way to explore the internal structure of light exotic hadrons that can be abundantly produced in relativistic heavy and/or light ion collisions.