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Multiplicity dependence of light nuclei production at LHC energies in the canonical statistical model

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arxiv 1808.05245 v1 pith:NXNTU5J3 submitted 2018-08-15 hep-ph nucl-exnucl-th

Multiplicity dependence of light nuclei production at LHC energies in the canonical statistical model

classification hep-ph nucl-exnucl-th
keywords multiplicitychargeddatalightmodelpionstatisticalagreement
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The statistical model with exact conservation of baryon number, electric charge, and strangeness - the Canonical Statistical Model (CSM) - is used to analyze the dependence of yields of light nuclei at midrapidity on charged pion multiplicity at the LHC. The CSM calculations are performed assuming baryon-symmetric matter, using the recently developed Thermal-FIST package. The light nuclei-to-proton yield ratios show a monotonic increase with charged pion multiplicity, with a saturation at the corresponding grand-canonical values in the high-multiplicity limit, in good qualitative agreement with the experimental data measured by the ALICE collaboration in pp and Pb-Pb collisions at different centralities and energies. Comparison with experimental data at low multiplicities shows that exact conservation of charges across more than one unit of rapidity and/or a chemical freeze-out temperature which decreases with the charged pion multiplicity improves agreement with the data.

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Cited by 4 Pith papers

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    Local baryon conservation in a canonical ensemble drives net-proton κ6/κ2 to small or negative values in restricted acceptance, establishing a baseline that must be subtracted before interpreting signals of chiral cri...

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  4. Testing production scenarios for (anti-)(hyper-)nuclei with multiplicity-dependent measurements at the LHC

    hep-ph 2019-07 unverdicted novelty 4.0

    Multiplicity-dependent measurements of B_A for hyper-nuclei with extended wave functions like the hyper-triton in pp, pA, and AA collisions are predicted to show large differences between coalescence and thermal models.