Abstract
Within the chiral unitary approach and with the constraints of heavy quark spin symmetry, we study the coupled channel interactions of ${\bar D}^{(*)}\Sigma_c^{(*)}$ channels, close to whose thresholds three pentaquark-like $P_c$ states have been reported by the LHCb Collaboration. In the present work, we take into account the contributions of pion exchanges via box diagrams to the interaction potentials, and therefore lift the degeneracy in the masses of ${\bar D}^*\Sigma_c^{(*)}$ spin multiplets. Fitting the $J/\psi p$ invariant mass distributions in the $\Lambda_b^0 \to J/\psi K^- p$ decay, we find that the LHCb pentaquark states can not be reproduced in the direct $J/\psi p$ production in the $\Lambda_b^0$ decay, and can only be indirectly produced in the final state interactions of the $\Lambda_b^0$ decay products, ${\bar D}^*\Sigma_c^{(*)}$, which further supports the nature of these states as $\bar{D}\Sigma_c$ molecules. Based on the fit results obtained, we study the partial decay widths/branching ratios to other decay channels, $\bar{D}^* \Lambda_c$, $\bar{D} \Lambda_c$, and $\eta_c N$, and the corresponding invariant mass distributions. The resonances with $J^P=\frac{1}{2}^-$, $P_c(4312)$, $P_c(4440)$ and the one of $\bar{D}^* \Sigma_c^*$ around 4500 MeV, have large partial decay width into $\eta_c N$, and thus, can be easily seen in the $\eta_c N$ invariant mass distributions. By contrast, the states with $J^P=\frac{3}{2}^-$, $P_c(4457)$, the (predicted) narrow $P_c(4380)$ and the bound state of $\bar{D}^* \Sigma_c^*$ with a mass of about 4520 MeV, do not decay into $\eta_c N$. Therefore, the $\eta_c N$ channel should be studied in future to provide further insights into the nature of these states, especially that of the $P_c(4440)$ and $P_c(4457)$.
Highlights
Fitting the J=ψp invariant mass distributions in the Λ0b → J=ψK−p decay, we find that the LHCb pentaquark states cannot be reproduced in the direct J=ψp production in the Λ0b decay, and can only be indirectly produced in the final state interactions of the Λ0b decay products, DðÃÞΣðcÃÞ, which further supports the nature of these states as DðÃÞΣc molecules
In the sector of J 1⁄4 5=2, I 1⁄4 1=2, there is only one channel, D ÃΣÃc, for which the potential is attractive and generates a bound state [14]. Since this state can not be coupled to the J=ψN channel as discussed in Ref. [45], we do not consider it in the present work, and we focus on the properties of the three Pc states in the J=ψp invariant mass distributions
We revisited the interactions of DðÃÞΣðcÃÞ and their coupled channels with the chiral unitary approach and the constraints of heavy quark spin symmetry
Summary
In 2015, two pentaquarklike resonances were reported by the LHCb Collaboration in the J=ψp mass spectrum of the Λ0b → J=ψK−p decay [1], referred to as Pcð4380Þþ and Pcð4450Þþ, of which the masses and widths are MPc1 1⁄4 ð4380 Æ 8 Æ 29Þ MeV; ΓPc1 1⁄4 ð205 Æ 18 Æ 86Þ MeV; MPc2 1⁄4 ð4449.8 Æ 1.7 Æ 2.5Þ MeV; ΓPc2 1⁄4 ð39 Æ 5 Æ 19Þ MeV;. With some uncertainties about their spin-parity JP quantum numbers [2] Later, these two Pc states were confirmed by a model-independent reanalysis of the experimental data [3], and observed in the Λ0b → J=ψpπ− decay [4] as suggested in Refs. These two Pc states were confirmed by a model-independent reanalysis of the experimental data [3], and observed in the Λ0b → J=ψpπ− decay [4] as suggested in Refs. [8], it is suggested to search for these hidden charm molecular states in the decay channel of J=ψN, which was later studied in more detail in Ref. Pcð4312Þ, Pcð4440Þ, and Pcð4457Þ are often assumed to be molecular states of D Σc with JP 1⁄4 12−, D ÃΣc with
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