PaperPanorama

arXiv:2608.05708·v1·Nuclear Experiment

Three-baryon femtoscopy as an effective 33 scattering experiment

ALICE Collaboration

Abstract

Scattering experiments have long been the gold standard for constraining hadronhadron interactions, providing direct information on the angular momentum and spin dependence over a wide range of kinematic configurations. However, experimental constraints on three-body dynamics remain limited, specifically for unbound systems and systems involving short-lived hadrons. In this work, the three-proton correlation function is measured in pp collisions at TeV with ALICE at the LHC and presented as a novel approach to access hadronic interactions in three-body systems. A new analysis strategy is employed to isolate the ppp contribution to the correlation function by correcting for background channels and experimental effects, and enabling a direct comparison with state-of-the-art three-body continuum calculations. The extracted correlation function provides the first direct access to the isospin three-body system. The measured observable is found to be sensitive to the partial-wave structure of the nucleonnucleon interaction and indicates that the nuclear interaction acts even at high angular momentum and parity states of the three-body system, revealing an effective long-range attractive component, observed experimentally for the first time in a three-proton continuum system. Hence, three-hadron femtoscopy emerges as an effective 33 scattering experiment with three unbound hadrons in initial and final states. The copious production of hyperons at the modern high-energy colliders ensures the possibility of extending such measurements beyond nucleons, opening a new avenue for future precision studies of three-body dynamics in the strangeness sector.

Comments: 28 pages, 7 captioned figures, authors from page 23, figures at http://alice-publications.web.cern.ch/node/13447