Hadronization into Nuclei: Does Size Matter?
Anton Andronic, Peter Braun-Munzinger, Hjalmar Brunßen, Johanna Stachel
Abstract
We investigate an extension of the statistical hadronization model (SHM) that takes (hyper)nucleus sizes into account. The spatial extent of nuclear wave functions relative to the fireball volume is used to calculate a size correction, which describes the suppression with respect to a point-like treatment of the (hyper)nucleus at hadronization. For several species of light nuclei (d, 3H, 3He) and for the hypernucleus 3ΛH, the predicted effects of the size correction on SHM yields are compared to yield measurements in pp, p-Pb, and Pb-Pb collisions in the ALICE experiment. The experimental data suggest that this size correction, based on applying final-state wave functions at chemical freeze-out, does not give a consistent description of (hyper)nucleus production in nuclear and hadronic collisions. By contrast, the SHM without a nuclear-size correction provides a substantially better description of the data. This result lends further support to the interpretation that such nuclear states are formed from initially compact (multi-quark) configurations which after hadronization expand to their final-state wave functions.
Create a lesson
Related papers
Trace-anomaly decomposition and universal dark matter scaling in compact stars
Adamu Issifu, Constança Providência, Tobias Frederico
Thermodynamic signatures do not uniquely identify deconfinement in neutron stars
Yong-Liang Ma, Jia-Ying Xiong
Properties of rapidly rotating hot neutron stars within Brueckner theory
Hong-Ming Liu, Bo-Xiu Zhou, Zeng-Hua Li et al.
Microscopic Insights into the Quarkyonic Hadron--Quark Crossover: Lessons from Ultracold Fermi Gases
Hiroyuki Tajima
Dispersive optical model description of the CaFe experiment
R. A. Ramon, M. C. Atkinson, W. H. Dickhoff
A Two-Component Exciton Model for β-Delayed Neutron Emission
Nico Braukman, Toshihiko Kawano, Robert Grzywacz et al.