Abstract

We perform a systemical investigation of the low-lying doubly-heavy dibaryon systems with strange $S=0$, isospin $I=0$, $1$, $2$ and the angular momentum $J=0$, $1$, $2$, $3$ in the quark delocalization color screening model. We find the effect of channel-coupling cannot be neglected in the study of the multi-quark systems. Due to the heavy flavor symmetry, the results of the doubly-charm and doubly-bottom dibaryon systems are similar with each other. Both of them have three bound states, the quantum numbers of which are $IJ=00$, $IJ=02$ and $IJ=13$, respectively. The energies are $4554$ MeV, $4741$ MeV, and $4969$ MeV respectively for the doubly-charm systems and $11219$ MeV, $11416$ MeV, and $11633$ MeV respectively for the doubly-bottom dibaryon systems. Besides, six resonance states are obtained, which are $IJ=00$ $N\Xi_{cc}$ and $N\Xi_{bb}$ with resonance mass of $4716$ MeV and $11411$ MeV respectively, $IJ=11$ $N\Xi^*_{cc}$ and $N\Xi^*_{bb}$ with resonance mass of $4757$ MeV and $11432$ MeV respectively, and $IJ=12$ $\Sigma_{c}\Sigma^*_{c}$ and $\Sigma_{b}\Sigma^*_{b}$ with resonance mass of $4949$ MeV and $11626$ MeV respectively. All these heavy dibaryons are worth searching for on experiments, although it will be a challenging work.

Highlights

  • A worldwide theoretical and experimental effort to search for dibaryons has lasted a long time

  • The well-known dibaryon resonance d∗ was repeatedly observed by the Wide Angle Shower Apparatus (WASA) detector at the Cooler Synchrotron (COSY) [1,2,3,4,5], and extensively investigated within various theoretical approaches [6,7,8,9,10,11,12,13]

  • We perform a systematical investigation to the low-lying doubly heavy dibaryon systems with strange S = 0, isospin I = 0, 1, 2, and the angular momentum J = 0, 1, 2, 3

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Summary

Introduction

A worldwide theoretical and experimental effort to search for dibaryons has lasted a long time. The well-known dibaryon resonance d∗ was repeatedly observed by the Wide Angle Shower Apparatus (WASA) detector at the Cooler Synchrotron (COSY) [1,2,3,4,5], and extensively investigated within various theoretical approaches [6,7,8,9,10,11,12,13] Another dibaryon N was proposed as a narrow resonance in a relativistic quark model [14] and was investigated by other quark models [15,16,17,18,19,20], as well as the lattice QCD [21,22]. The study of the strong interaction among hadrons at the Large Hadron Collider (LHC) by the ALICE Collaboration supported the possibility of forming the N state [24]

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