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Tetraquarks made of sufficiently unequal-mass heavy quarks are bound in QCD

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arxiv 2311.01498 v3 pith:WKISFV3J submitted 2023-11-02 hep-ph hep-lat

Tetraquarks made of sufficiently unequal-mass heavy quarks are bound in QCD

classification hep-ph hep-lat
keywords boundtetraquarksmassquarksantiquarkscolorcomposedevidence
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Tetraquarks, bound states composed of two quarks and two antiquarks, have been the subject of intense study but are challenging to understand from first principles. We apply variational and Green's function Monte Carlo methods to compute tetraquark ground-state energies in potential nonrelativistic QCD using a wide range of color and spatial wavefunctions. We find no evidence for bound tetraquarks composed of equal-mass quarks and antiquarks. Conversely, we find clear evidence for the existence of bound tetraquarks for sufficiently unequal quark/antiquark mass ratios at all overall mass scales where our effective theory results are applicable. We predict the critical mass ratios for bound state formation and study tetraquark bound states' spatial and color structure at leading order and next-to-leading order in potential nonrelativistic QCD.

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  1. Renormalon subtracted nonrelativistic QCD for heavy hadron systems

    hep-ph 2026-07 conditional novelty 6.5

    MRS-pNRQCD plus GFMC stabilizes heavy-hadron spectroscopy; NNLO baryon masses undershoot lattice QCD by 125–175 MeV with 1/m_Q scaling, and a critical mass ratio for tetraquark binding is extracted.