Abstract

Inspired by the observation of the $P_{cs} (4459)$ state by LHCb recently, we reexamine the results of the interaction of the $J/\psi \Lambda$ channel with its coupled channels, exploiting the coupled channel unitary approach combined with heavy quark spin and local hidden gauge symmetries. By tuning the only free parameter, we find a pole of $(4459.07+i6.89)$ MeV below the $\bar D^* \Xi_c$ threshold, which was consistent well with the mass and width of the $P_{cs} (4459)$ state. Thus, we assume the $P_{cs} (4459)$ state to be a $\bar D^* \Xi_c$ bound state with the uncertainties on its degeneracy with $J^P = \frac{1}{2}^-$ and $J^P = \frac{3}{2}^-$. For the degeneracy, it would have two-poles structure, like $P_c (4450)$ before. There is another pole in the $J^P = \frac{1}{2}^-$ sector, $(4310.53+i8.23)$ MeV, corresponding to a deep bound state of $\bar D \Xi_c$. Furthermore, the previously predicted loose bound states of $\bar D \Xi'_c$, $\bar D^* \Xi'_c$, $\bar D^* \Xi^*_c$ with $J=1/2,~I=0$ and $\bar D^* \Xi'_c$, $\bar D \Xi^*_c$, $\bar D^* \Xi_c^*$ with $J=3/2,~I=0$ may exist as either bound states or unbound virtual states. We hope that future experiments can search for the $\bar D^{(*)} \Xi_c$ molecular states in their dominant decay channels of $\bar D^{(*)}_s \Lambda_c$, also in the $J/\psi \Lambda$ and $\eta_c \Lambda$ channels to reveal their different nature.

Highlights

  • Using the coupled channel unitary approach (CCUA) [1,2,3] and the local hidden gauge (LHG) formalism [4,5,6,7] combined with SU(4) symmetry in early 2010, Ref. [8] shows that several hidden charm and hidden charm strangeness resonances were predicted around the energy range of 4200 MeV–4600 MeV, where the possible decay channel of ηcN or J=ψN was suggested for the search for the hidden charm states in experiments

  • The subtraction constant aμ in the meson-baryon loop functions is a free parameter in our formalism, and we cannot get a precise value for it theoretically

  • It is even worse that the prediction will significantly rely on the value of aμ in a loosely bound way, since the value of this parameter will influence the lowest strength of attractive potential to form a bound state

Read more

Summary

INTRODUCTION

Using the coupled channel unitary approach (CCUA) [1,2,3] and the local hidden gauge (LHG) formalism [4,5,6,7] combined with SU(4) symmetry in early 2010, Ref. [8] shows that several hidden charm and hidden charm strangeness resonances were predicted around the energy range of 4200 MeV–4600 MeV, where the possible decay channel of ηcN or J=ψN was suggested for the search for the hidden charm states in experiments. [8] shows that several hidden charm and hidden charm strangeness resonances were predicted around the energy range of 4200 MeV–4600 MeV, where the possible decay channel of ηcN or J=ψN was suggested for the search for the hidden charm states in experiments. [15], where seven hidden charm molecular states were predicted using the CCUA and LHG formalism together with the heavy quark spin symmetry (HQSS) [26,27,28]. The decay properties of the hidden charm strangeness resonances predicted in. [37], where a resonance structure of the Pcsð4459Þ state was found in the invariant mass distributions of J=ψΛ, given as MPcs 1⁄4 ð4458.8 Æ 2.9þ−14..17Þ MeV; ΓPcs 1⁄4 ð17.3 Æ 6.5þ−58..70Þ MeV; which is just about 19 MeV below the D Ã0Ξ0c threshold. The two-pole structure was suggested in the results of the QCD sum rules in Ref. [38], where the Pcsð4459Þ state was assumed to be a D ÃΞc molecular state with spinparity

D Ξc bound state at
D ÃΞc molecular
FORMALISM
D ÃΞ0c p1ffiffi μ24
D Ãs Λc μ13 μ23 μ3
RESULTS AND DISCUSSIONS
2.16 ÁÁÁ ÁÁÁ
CONCLUSION
Full Text
Paper version not known

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call

Disclaimer: All third-party content on this website/platform is and will remain the property of their respective owners and is provided on "as is" basis without any warranties, express or implied. Use of third-party content does not indicate any affiliation, sponsorship with or endorsement by them. Any references to third-party content is to identify the corresponding services and shall be considered fair use under The CopyrightLaw.