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arXiv · hep-ph/0512256

QCD Tests of the Puzzling Scalar Mesons

Abstract

Motivated by several recent data, we test the QCD spectral sum rules (QSSR) predictions based on different proposals (\bar qq, \bar q\bar q qq, and gluonium) for the nature of scalar mesons. In the I=1 and 1/2 channels, the unusual (wrong) splitting between the a_0(980) and κ(900) and the a_0(980) width can be understood from QSSR within a \bar qq assignement. However, none of the \bar qq and \bar q\bar q qq results can explain the large κwidth, which may suggest that it can result from a strong interference with non-resonant backgrounds. In the I=0 channel, QSSR and some low-energy theorems (LET) require the existence of a low mass gluonium σ_B(1 GeV) coupled strongly to Goldstone boson pairs which plays in the U(1)_V channel, a similar role than the η' for the value of the U(1)_A topological charge. The observed σ(600) and f_0(980) mesons result from a maximal mixing between the gluonium σ_B and \bar qq(1 GeV) mesons, a mixing scheme which passes several experimental tests. OZI violating J/ψ--> ϕπ^+π^-, D_s--> 3πdecays and J/ψ--> γS glueball filter processes may indicate that most of the I=0 mesons above 1 GeV have important gluonium in their wave functions. We expect that the f_0(1500), f_0(1710) and f_0(1790) have significant gluonium component in their wave functions, while the f_0(1370) is mostly \bar qq. Tests of these results can be provided by the measurements of the pure gluonium η'ηand 4πspecific U(1)_A decay channels.

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BibTeXRIS

Stephan Narison, CNRS-Montpellier. 2006-06-01. QCD Tests of the Puzzling Scalar Mesons. https://doi.org/10.1103/physrevd.73.114024

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