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Deuteron-like heavy dibaryons from Lattice QCD

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arxiv 1906.06054 v2 pith:F7PAEBBB submitted 2019-06-14 hep-lat hep-exhep-phnucl-exnucl-th

classification hep-lathep-exhep-phnucl-exnucl-th
keywords omegadibaryonssigmaheavylatticeboundccbcbbfind
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We report the first lattice quantum chromodynamics (QCD) study of deuteron($np$)-like dibaryons with heavy quark flavours. These include particles with following dibaryon structures and valence quark contents: $\Sigma_c\Xi_{cc} (uucucc)$, $\Omega_c\Omega_{cc} (sscscc)$, $\Sigma_b\Xi_{bb} (uububb)$, $\Omega_b\Omega_{bb} (ssbsbb)$ and $\Omega_{ccb}\Omega_{cbb} (ccbcbb)$, and with spin ($J$)-parity ($P$), $J^{P} \equiv 1^{+}$. Using a state-of-the art lattice QCD calculation, after controlling relevant systematic errors, we unambiguously find that the ground state masses of dibaryons $\Omega_c\Omega_{cc} (sscscc)$, $\Omega_b\Omega_{bb} (ssbsbb)$ and $\Omega_{ccb}\Omega_{cbb} (ccbcbb)$ are below their respective two-baryon thresholds, suggesting the presence of bound states which are stable under strong and electromagnetic interactions. We also predict their masses precisely. For dibaryons $\Sigma_c\Xi_{cc} (uucucc)$, and $\Sigma_b\Xi_{bb} (uububb)$, we could not reach to a definitive conclusion about the presence of any bound state due to large systematics associated with these states. We also find that the binding of these dibaryons becomes stronger as they become heavier in mass. This study also opens up the possibility of the existence of many other exotic nuclei, which can be formed through the fusion of heavy baryons, similar to the formation of nuclei of elements in the Periodic Table.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Lattice QCD Study of Positive Parity Dibaryons with Maximal Charm and Strangeness

    hep-lat 2025-07 conditional novelty 6.0 of 10

    Lattice QCD finds the Omega_ccc-Omega_ccc dibaryon likely bound by about 45 MeV in the spin-0 channel, Omega-Omega near threshold, and both spin-2 systems unbound.

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