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Exploring the strong interaction of three-body systems at the LHC

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arxiv 2308.16120 v2 pith:DMNLH2YM submitted 2023-08-30 nucl-ex hep-ex

Exploring the strong interaction of three-body systems at the LHC

classification nucl-ex hep-ex
keywords protoncorrelationsdeuteronsinteractionnucleisystemsthree-bodyanalysis
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Deuterons are atomic nuclei composed of a neutron and a proton held together by the strong interaction. Unbound ensembles composed of a deuteron and a third nucleon have been investigated in the past using scattering experiments and they constitute a fundamental reference in nuclear physics to constrain nuclear interactions and the properties of nuclei. In this work, K$^{+}-$d and p$-$d femtoscopic correlations measured by the ALICE Collaboration in proton$-$proton (pp) collisions at $\sqrt{s}=13$ TeV at the Large Hadron Collider (LHC) are presented. It is demonstrated that correlations in momentum space between deuterons and kaons or protons allow us to study three-hadron systems at distances comparable with the proton radius. The analysis of the K$^{+}-$d correlation shows that the relative distances at which deuterons and protons or kaons are produced are around 2 fm. The analysis of the p$-$d correlation shows that only a full three-body calculation that accounts for the internal structure of the deuteron can explain the data. In particular, the sensitivity of the observable to the short-range part of the interaction is demonstrated. These results indicate that correlations involving light nuclei in pp collisions at the LHC will also provide access to any three-body systems in the strange and charm sectors.

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Cited by 3 Pith papers

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  1. Scattering data and correlation function for the $K f_1(1285)$ interaction

    hep-ph 2026-02 conditional novelty 5.0

    Assuming f1(1285) is a K* anti-K molecule, the K f1 system is predicted to have a near-threshold bound/resonant state with a distinctive correlation function.

  2. Can the strong interactions between hadrons be determined using femtoscopy?

    nucl-th 2025-04 unverdicted novelty 3.0

    The universality assumption in the Koonin-Pratt formula for femtoscopic correlations introduces potentially large intrinsic uncertainty when extracting strong interactions between hadrons like nucleons.

  3. Toward a Unified Understanding of the Dense Matter Equation of State

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    A review of three Bayesian/computational frameworks for combining heavy-ion and astrophysical constraints on the dense-matter equation of state, plus a proposed unified integration workflow.