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Jing-wen Feng

Publications and source records attributed to Jing-wen Feng.

3 recordsLinked to original sources

Investigating the Molecular Nature of $Λ_b(6146)$ and $Λ_b(6152)$ via Strong Decays and Predicting Their Heavy-Quark Symmetry Partners

Heavy quark symmetry can help us identify the internal structure of hadrons and predict new particles. In this study, we examine the strong decay modes of the observed $Λ_b^0(6146)$ and $Λ_b^0(6152)$, assuming these two states are molecular states primarily composed of $\bar{B}^{*}N$ component. The partial decay widths of the $\bar{B}^{*}N$ molecular state into the $πΣ_b$ and $πΣ_b^{*}$ final states through hadronic loops are calculated using effective Lagrangians. Our results, when compared with LHCb observations, support the interpretation of $Λ_b^0(6146)$ as a molecule primarily composed of $\bar{B}^{*}N$ components. However, the decay width of $Λ_b^0(6152)$ cannot be accurately reproduced within the molecular state framework. Based on the above results and heavy quark symmetry, we predict the existence of $\bar{B}^{*}N$ molecular states with $J^p=5/2^{+}$, which are the heavy quark spin symmetry partners of $Λ_b(6146)$, with masses in the range of 6195-6200 MeV. And the main decay is $πΣ_b^{*}$ channel. Moreover, there must existence of a $D^{*}N$ molecule with $J^p=3/2^{+}$, possible corresponding to the experimentally observed $Λ_c(2860)^{+}$. If $Λ_c(2880)^{+}$ is indeed the heavy quark flavor symmetry partner of $Λ_b(6152)$, it would exhibit a conventional three-quark structure. Therefore, we also propose the search for a $D^{*}N$ molecule with a spin-parity of $J^p=5/2^{+}$, which would be the heavy-quark spin partner state of $Λ_c(2860)^{+}$. It should be noted that these baryons may be mixed states, containing both molecular and three-quark components. These results can aid experiments in exploring the internal structure of these baryons.

hep-ph

Studying the $Ξ(2030)$ as a predominantly $\bar{K}^{*}Σ$ molecular state

Since its discovery in 1977, the spin-parity of $Ξ(2030)$ has not been fully determined experimentally. The latest Particle Data Group (PDG) listing suggests it may be a baryon with $J=5/2$. Therefore, studying the mass spectrum and decay properties of $Ξ(2030)$ has become a current hot topic to definitively establish its spin-parity. As the three-quark model fails to explain $Ξ(2030)$, we previously proposed it may be a molecule primarily composed of $\bar{K}^{}Σ$ with $J^P=5/2^{+}$, based on its mass spectrum study. To verify its molecular state interpretation, this work proposes studying the strong decays of $Ξ(2030)$ assuming it is a $P$-wave $J^P=5/2^{+}$ meson-baryon molecule predominantly composed of $\bar{K}^{}Σ$. We calculated all experimentally measured two-body and three-body final state decay widths of $Ξ(2030)$, including $Ξ(2030) \to \bar{K}Λ, \bar{K}Σ, πΞ, πΞ^{*}$, and $Ξ(2030) \to ππΞ, π\bar{K}Σ, π\bar{K}Λ$. The results indicate that both the total decay width and partial decay widths agree well with experimental values within the error margins. This supports that $Ξ(2030)$ is a molecule with spin-parity $J^P = 5/2^{+}$, predominantly composed of $\bar{K}^{*}Σ$. Compared to the experimental central values, our results are slightly smaller, which suggests that $Ξ(2030)$ may contain additional components besides meson-baryon molecular components, such as three quark structures.

hep-ph

Production of the newly observed $\bar{T}_{c\bar{s}0}$ by kaon-induced reactions on a proton/neutron target

Recently, a new doubly charged tetraquark $T^{a}_{c\bar{s}0}(2900)^{++}$ and its neutral partner $T^{a}_{c\bar{s}0}(2900)^0$ at the invariant mass spectrum of $πD_s$ were observed by the LHCb Collaboration. According to its properties, such as the mass and decay width, the $T^{a}_{c\bar{s}0}(2900)^{++/0}$ have been suggested to be a compact multi-quark state or a hadron molecule. In order to distinguish the various interpretations of the $T^{a}_{c\bar{s}0}(2900)^{++/0}$, we investigate the possibility to study the $\bar{T}^{a}_{c\bar{s}0}(2900)$ [the antiparticle of $T^{a}_{c\bar{s}0}(2900)$] by kaon-induced reactions on a proton target in an effective Lagrangian approach. The production mechanism is characterized by the $t$-channel $D$ meson exchange. Our theoretical approach is based on the assumption that $\bar{T}^{a}_{c\bar{s}0}(2900)$ can be either a $K^{*}D^{*}-D_s^{*}ρ$ molecule or a compact tetraquark state. Using the coupling constants of the $\bar{T}^{a}_{c\bar{s}0}(2900)$ to $KD$ channel obtained from molecule or compact tetraquark picture of the $\bar{T}^{a}_{c\bar{s}0}(2900)$, we compute the cross-sections for the process $K^{-}n\to{}\bar{T}^{a}_{c\bar{s}0}(2900)^{--}Λ^{+}_c$. The $\bar{K}N$ initial state interaction mediated by Pomeron and Reggeon exchanges is also included, which reduces the production of the $\bar{T}^{a}_{c\bar{s}0}(2900)$. Our calculations show that whether $\bar{T}^{a}_{c\bar{s}0}(2900)$ is a molecule or a compact tetraquark state, the cross-sections for the $K^{-}n\to{}\bar{T}^{a}_{c\bar{s}0}(2900)^{--}Λ^{+}_c$ reaction are of similar magnitude, ranging from approximately 0.075 nb to 0.270 nb.

hep-ph