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$d^\ast (2380)$ dibaryon from lattice QCD

High Energy Physics - Lattice 2020-11-23 v2 High Energy Physics - Experiment High Energy Physics - Phenomenology Nuclear Experiment Nuclear Theory

Abstract

The ΔΔ\Delta\Delta dibaryon resonance d(2380)d^\ast (2380) with (JP,I)=(3+,0)(J^P, I)=(3^+, 0) is studied theoretically on the basis of the 3-flavor lattice QCD simulation with heavy pion masses (mπ=679,841m_\pi =679, 841 and 10181018 MeV). By using the HAL QCD method, the central Δ\Delta-Δ\Delta potential in the 7S3{}^7S_3 channel is obtained from the lattice data with the lattice spacing a0.121a\simeq 0.121 fm and the lattice size L3.87L\simeq 3.87 fm. The resultant potential shows a strong short-range attraction, so that a quasi-bound state corresponding to d(2380)d^\ast (2380) is formed with the binding energy 2525-4040 MeV below the ΔΔ\Delta\Delta threshold for the heavy pion masses. The tensor part of the transition potential from ΔΔ\Delta\Delta to NNNN is also extracted to investigate the coupling strength between the SS-wave ΔΔ\Delta\Delta system with JP=3+J^P=3^+ and the DD-wave NNNN system. Although the transition potential is strong at short distances, the decay width of d(2380)d^\ast (2380) to NNNN in the DD-wave is kinematically suppressed, which justifies our single-channel analysis at the range of the pion mass explored in this study.

Keywords

Cite

@article{arxiv.2006.00856,
  title  = {$d^\ast (2380)$ dibaryon from lattice QCD},
  author = {Shinya Gongyo and Kenji Sasaki and Takaya Miyamoto and Sinya Aoki and Takumi Doi and Tetsuo Hatsuda and Yoichi Ikeda and Takashi Inoue and Noriyoshi Ishii},
  journal= {arXiv preprint arXiv:2006.00856},
  year   = {2020}
}

Comments

8 pages, 6 figures

R2 v1 2026-06-23T15:57:31.099Z