| Literature DB >> 25995703 |
Milan Vujinovic1, Richard Williams2.
Abstract
By using the Dyson-Schwinger/Bethe-Salpeter formalism in Euclidean spacetime, we calculate the ground state spectrum of [Formula: see text] hadrons in an SU(2) gauge theory with two fundamental fermions. We show that the rainbow-ladder truncation, commonly employed in QCD studies, is unsuitable for a description of an SU(2) theory. This we remedy by truncating at the level of the quark-gluon vertex Dyson-Schwinger equation in a diagrammatic expansion. Results obtained within this novel approach show good agreement with lattice studies. These findings emphasize the need to use techniques more sophisticated than rainbow-ladder when investigating generic strongly interacting gauge theories.Entities:
Year: 2015 PMID: 25995703 PMCID: PMC4423856 DOI: 10.1140/epjc/s10052-015-3324-x
Source DB: PubMed Journal: Eur Phys J C Part Fields ISSN: 1434-6044 Impact factor: 4.590
Fig. 1The Bethe–Salepter equation for the meson
Fig. 2The Dyson–Schwinger equation for the quark propagator. Straight lines are quarks, wiggly ones gluons. Filled circles indicate dressed propagators and vertices
Fig. 3The truncated two-body kernel in rainbow-ladder approximation
Chiral limit results for meson masses in rainbow-ladder (RL) and beyond rainbow-ladder (BRL) truncations, compared with lattice data for an SU(2) theory. All units are in TeV. Errors of the BRL results come from the extrapolation procedure. For the state, our continuum result is for an isoscalar; lattice results are forthcoming
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| RL | BRL, bare 3g vertex | BRL, dressed 3g vertex | Lattice, from [ |
|---|---|---|---|---|
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| 0 |
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| – |
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| 1.24 |
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| – |
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| 1.95 |
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| 2.36 |
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Fig. 4The truncated DSE for the quark–gluon vertex. The orange square denotes the internal QG vertex model, according to Eq. (5)
Fig. 5The truncated two-body kernel beyond rainbow-ladder approximation
Fig. 6Ghost () and gluon () dressing functions employed in our calculations. The momentum is in arbitrary units: scale setting procedure is described in Sect. 4.2
Fig. 7Eigenvalue (top) and vertex pole (bottom) extrapolation from to the time-like region. The known result, obtained by direct analytic continuation, is given by labeled points for comparison
Results for vertex pole extrapolation for QCD rainbow-ladder in the chiral limit, compared with the result computed through direct analytic continuation. All units are in MeV. The points are taken from the region ; the errors on extrapolated results come from the fitting procedure
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| Calc |
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|---|---|---|---|
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| 0 |
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| 658 |
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| 738 |
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| 900 |
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Fig. 9The truncated DSE for the three-gluon vertex. To ensure that bose-symmetry is maintained the right-hand side is averaged over all cyclic permutations
Fig. 8Dressing for the three-gluon vertex, with and ; see Eq. (50) of [63]. The momentum variable is in arbitrary units: scale setting procedure is described in Sect. 4.2
Fig. 10Adherence of the calculated pion mass (squared) to the GMOR relation, as a function of the (corrected) quark mass
Fig. 11meson masses (in units of chiral limit ) as a function of current quark mass. Bands correspond to uncertainties due to the extrapolation. The right-hand side of the vertical line corresponds to the region where