English

Double heavy tri-hadron bound state via delocalized $\pi$ bond

High Energy Physics - Phenomenology 2019-01-16 v1 Nuclear Theory

Abstract

The number of exotic candidates which are beyond the conventional quark model has grown dramatically during the last decades. Some of them could be viewed as analogues of the deuteron. Similarly, the existence of the triton indicates that bound states formed by three hadrons could also exist. To illustrate this possibility, we study the DDKDD^*K and BBKˉBB^*\bar{K} systems by using the Born-Oppenheimer Approximation. To leading order, only one-pion exchange potentials are considered, which means that the three constitutes share one virtual pion. That is similar to the role of the delocalized π\pi bond for the formation of Benzene in chemistry. After solving the Schr\"odinger equation, we find two three-body DDKDD^*K and BBKˉBB^*\bar{K} bound states with masses 4317.924.32+3.66 MeV4317.92_{-4.32}^{+3.66}~\mathrm{MeV} and 11013.658.84+8.49 MeV11013.65_{-8.84}^{+8.49}~\mathrm{MeV}, respectively. The masses of their DDˉKD\bar{D}^*K and BBˉKˉB\bar{B}^*\bar{K} analogues are 4317.926.55+6.13 MeV4317.92_{-6.55}^{+6.13}~\mathrm{MeV} and 11013.659.02+8.68 MeV11013.65_{-9.02}^{+8.68}~\mathrm{MeV}. From the experimental side, the DDˉKD\bar{D}^*K bound state could be found by analyzing the current world data of the BJ/ψππKB\to J/\psi\pi\pi K process by focusing on the J/ψπKJ/\psi \pi K channel. Its confirmation could also help to understand the formation of kaonic nuclei in nuclear physics.

Keywords

Cite

@article{arxiv.1711.06143,
  title  = {Double heavy tri-hadron bound state via delocalized $\pi$ bond},
  author = {Li Ma and Qian Wang and Ulf-G. Meißner},
  journal= {arXiv preprint arXiv:1711.06143},
  year   = {2019}
}

Comments

5 pages, 7 figures