2017
DOI: 10.1038/nphys4111
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Enhanced production of multi-strange hadrons in high-multiplicity proton–proton collisions

Abstract: At su ciently high temperature and energy density, nuclear matter undergoes a transition to a phase in which quarks and gluons are not confined: the quark-gluon plasma (QGP) 1 . Such an exotic state of strongly interacting quantum chromodynamics matter is produced in the laboratory in heavy nuclei high-energy collisions, where an enhanced production of strange hadrons is observed 2-6 . Strangeness enhancement, originally proposed as a signature of QGP formation in nuclear collisions 7 , is more pronounced for … Show more

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Cited by 530 publications
(432 citation statements)
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“…Again we point out the interplay between baryonic colour reconnection and the strangeness production mechanism which is responsible for the improvement in the description of the heavy baryons and − . In a recent analysis by ALICE a significant enhancement of strange to non-strange hadron production with increasing particle multiplicity in pp collisions was observed [6]. Since we are developing a model that incorporates strangeness production and the enhanced production of baryons it is instructive to compare our model to the data published by the ALICE collaboration.…”
Section: Resultsmentioning
confidence: 99%
See 1 more Smart Citation
“…Again we point out the interplay between baryonic colour reconnection and the strangeness production mechanism which is responsible for the improvement in the description of the heavy baryons and − . In a recent analysis by ALICE a significant enhancement of strange to non-strange hadron production with increasing particle multiplicity in pp collisions was observed [6]. Since we are developing a model that incorporates strangeness production and the enhanced production of baryons it is instructive to compare our model to the data published by the ALICE collaboration.…”
Section: Resultsmentioning
confidence: 99%
“…Among the problems that are being observed are the correct description of high-multiplicity events and the flavour composition of final states. One striking observation, made recently by the ALICE collaboration, was that in highmultiplicity pp events properties similar to that of AA and pA collisions are observed [6].…”
Section: Introductionmentioning
confidence: 99%
“…Results are shown both for the original Dipsy implementation, as well as the Pythia8 implementation (the latter for pp only). The figure can be compared to experimental results obtained by ALICE [26]. Rope Hadronization can be seen to describe strangeness in all systems from e + e − to PbPb well.…”
Section: Resultsmentioning
confidence: 96%
“…The yields of strange hadrons increase linearly with the charged particle multiplicity, and the production rate is the same at the two energies for a given multiplicity. It should also be noted that the yields of particles with larger strange quark content increase faster as a function of multiplicity as already reported in [5]. Data are compared to several Monte Carlo models.…”
mentioning
confidence: 99%
“…Concerning the hadrochemistry one of the most intriguing results recently reported by the ALICE collaboration is the enhancement observed in the production of (multi-)strange hadrons relative to pions as a function of multiplicity in pp collisions at √ s = 7 TeV [5]. These are surprising observations, because strangeness enhancement was considered historically one of the signatures for the deconfinement in heavy-ion collisions [6], and also because none of the commonly-used pp Monte Carlo models reproduces quantitatively the existing data.…”
mentioning
confidence: 99%