English

Lattice QCD Study for Confinement and Hadrons

High Energy Physics - Lattice 2008-11-26 v1

Abstract

Using SU(3) lattice QCD, we perform the detailed studies of the three-quark and the multi-quark potentials. From the accurate calculation for more than 300 different patterns of 3Q systems, the static ground-state 3Q potential V3Qg.s.V_{\rm 3Q}^{\rm g.s.} is found to be well described by the Coulomb plus Y-type linear potential (Y-Ansatz) within 1%-level deviation. As a clear evidence for Y-Ansatz, Y-type flux-tube formation is actually observed on the lattice in maximally-Abelian projected QCD. For about 100 patterns of 3Q systems, we perform the accurate calculation for the 1st excited-state 3Q potential V3Qe.s.V_{\rm 3Q}^{\rm e.s.} by diagonalizing the QCD Hamiltonian in the presence of three quarks, and find a large gluonic-excitation energy ΔE3QV3Qe.s.V3Qg.s.\Delta E_{\rm 3Q} \equiv V_{\rm 3Q}^{\rm e.s.}-V_{\rm 3Q}^{\rm g.s.} of about 1 GeV, which gives a physical reason of the success of the quark model. ΔE3Q\Delta E_{\rm 3Q} is found to be reproduced by the ``inverse Mercedes Ansatz'', which indicates a complicated bulk excitation for the gluonic-excitation mode. We study also the tetra-quark and the penta-quark potentials in lattice QCD, and find that they are well described by the OGE Coulomb plus multi-Y type linear potential, which supports the flux-tube picture even for the multi-quarks.

Keywords

Cite

@article{arxiv.hep-lat/0508001,
  title  = {Lattice QCD Study for Confinement and Hadrons},
  author = {Hideo Suganuma and Hiroko Ichie and Fumiko Okiharu and Toru T. Takahashi},
  journal= {arXiv preprint arXiv:hep-lat/0508001},
  year   = {2008}
}

Comments

Invited talk at Int. Conf. on "High Energy and Mathematical Physics" Cadi Ayyad Univ. Marrakech, Morocco, April 4-7, 2005 (Moroccan Publisher) 13 pages

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