English

Charmed-strange tetraquarks and their decays in a potential quark model

High Energy Physics - Phenomenology 2023-06-07 v2 High Energy Physics - Experiment Nuclear Theory

Abstract

In the framework of a nonrelativistic potential quark model, we investigate the mass spectrum of the 1S1S-wave charmed-strange tetraquark states of cnsˉnˉcn\bar{s}\bar{n} and csnˉnˉcs\bar{n}\bar{n} (n=un=u or dd) systems. The tetraquark system is solved by a correlated Gaussian method. With the same parameters fixed by the meson spectra, we obtained the mass spectra for the 1S1S-wave tetraquark states. Furthermore, based on the predicted tetraquark spectra we estimate their rearrangement decays in a quark-exchange model. We find that the rearrangement decays of the tetraquarks may be mainly driven by the spin-spin interactions. The resonances X0(2900)0X_0(2900)^0 and Tcsˉ0a(2900)++/0T^a_{c\bar{s}0}(2900)^{++/0} reported from LHCb may be assigned to be the lowest 1S1S-wave tetraquark states Tˉcs0f(2818)\bar{T}_{cs0}^f(2818) and Tcsˉ0a(2828)T^{a}_{c\bar{s}0}(2828) classified in the quark model, respectively. It also allows us to extract the couplings for the initial tetraquark states to their nearby SS-wave interaction channels. We find that some of these couplings turn out to be sizeable. Following the picture of the wavefunction renormalization for the near-threshold strong SS-wave interactions, the sizeable coupling strengths can be regarded as an indication of their dynamic origins as candidates for hadronic molecules. Furthermore, our predictions suggest that signals for the 1S1S-wave charmed-strange tetraquark states can also be searched in the other channels, such as D0K+D^0K^+, D+K+D^+K^+, D+KD^{*+}K^-, D+K+D^{*+}K^+, D0K+D^{*0}K^+, D0Kˉ0D^0\bar{K}^{*0}, Ds+ρ0D_s^+\rho^0, etc.

Keywords

Cite

@article{arxiv.2211.01711,
  title  = {Charmed-strange tetraquarks and their decays in a potential quark model},
  author = {Feng-Xiao Liu and Ru-Hui Ni and Xian-Hui Zhong and Qiang Zhao},
  journal= {arXiv preprint arXiv:2211.01711},
  year   = {2023}
}

Comments

9 pages, 1 figure, the mistakes of the predicted decay properties have been corrected