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arXiv · 2609.24231

Deciphering the production mechanism of the LHCb $P_c$ states

Abstract

The three narrow pentaquarks $P_c(4312)$, $P_c(4440)$, and $P_c(4457)$ observed by LHCb are widely interpreted as hadronic molecules owing to their proximity to the $Σ_c\bar{D}^{(*)}$ thresholds. However, heavy-quark spin symmetry predicts additional partner states that have not been seen experimentally, making the production mechanism in $Λ_b^0$ decays particularly important in understanding their nature. We propose a novel production mechanism, which can naturally explain why only these three LHCb $P_c$ states have been clearly observed. The $P_c(4440)$ and $P_c(4457)$ are produced via the $D_{s1}^*(2860)Λ_c(2595)\bar{D}π$ box diagram leading to $K^-Σ_c\bar{D}^{*}$, followed by rescattering into $K^- J/ψp$. The box diagram develops a box singularity in the vicinity of the $P_c(4457)$, as all four states in the box can go on shell. The $P_c$ states themselves are dynamically generated through the rescattering of the $S$-wave $Σ_c\bar{D}^{(*)}$ to $J/ψp$. The $P_c(4312)$ proceeds analogously via the $D_{s0}(2590)Λ_c(2595)\bar{D}^*π$ box diagram but without a box singularity. The near-invisibility of the $Σ_c^*\bar{D}^{(*)}$ molecular states is attributed to the suppressed production of the $Λ_c(2625)$ in $Λ_b$ weak decays, as established by the lattice QCD calculations. This mechanism naturally reproduces the data with only two production parameters, whereas previous works required 7 parameters and a finely tuned background, and provides a natural explanation for why the $Σ_c^*\bar{D}^{(*)}$ states are barely visible. It yields unique, falsifiable predictions, $Γ(Λ_b^0\to P_c(4440/4457) K\to J/ψp K)/Γ(Λ_b^0\to\bar D_{s1}^*(2860)Λ_c(2595))\approx (0.2-0.4)\%$, $Γ(Λ_b^0\to P_c(4312) K\to J/ψp K)/Γ(Λ_b^0\to \bar D_{s0}(2590)Λ_c(2595))\approx (0.2-0.8)\%$.

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Wen-Jia Wang, Meng-Lin Du, Feng-Kun Guo, Bing Wu. 2026-09-21. Deciphering the production mechanism of the LHCb $P_c$ states. https://arxiv.org/abs/2609.24231

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