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arXiv · 2310.12492

Internal structures of the baryons $Ξ(2030)$ and $Ξ(2120)$

Abstract

Currently, there is much controversy surrounding the interpretation of the $Ξ(2030)$ and $Ξ(2012)$ as traditional hadrons containing double strange quarks. In particular, the ratios of the partial decay widths into $Λ\bar{K}$ and $Σ\bar{K}$ for $Ξ(2030)$ cannot obtain a suitable explanation under the $qss$ three quark structure~\cite{Xiao:2013xi}. Thus, we suggest the $Ξ(2030)$ and $Ξ(2012)$ to be $VB(=\bar{K}^{*}Σ/ρΞ/\bar{K}^{*}Λ/ϕΞ/ωΞ)$ molecular states. In this work, we perform a systematical investigation of possible molecular states from the $VB(=\bar{K}^{*}Σ/ρΞ/\bar{K}^{*}Λ/ϕΞ/ωΞ)$ interaction. The interaction of the system considered is described by the $t$-channel vector ($ρ,ω,ϕ,\bar{K}^{*}$) and pseudoscalar ($π,η,\bar{K}$) mesons exchanges. By solving the non-relativistic Schrödinger equation with the obtained one-boson-exchange potentials, the $VB(=\bar{K}^{*}Σ/ρΞ/\bar{K}^{*}Λ/ϕΞ/ωΞ)$ bound states with different quantum numbers are searched. The calculation suggests that $Ξ(2030)$ can be assigned as a $P$-wave $\bar{K}^{*}Σ/ρΞ/\bar{K}^{*}Λ/ϕΞ/ωΞ$ molecular state with spin parity $J^P=5/2^{+}$. The calculation also predict the existence of four $\bar{K}^{*}Σ/ρΞ/\bar{K}^{*}Λ/ϕΞ/ωΞ$ bound states with $J^P=1/2^{\pm}$ and $J^P=3/2^{\pm}$. The $Ξ(2012)$ may be a candidate for one of these four bound states. If $Ξ(2012)$ is an $S$-wave molecular state with $J^P=1/2^{-}$ or $J^P=3/2^{-}$, we suggest determining its spin and parity by studying its decay width, owing to the difference in their molecular components.

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Hao Hei, Yin Huang. 2023-10-19. Internal structures of the baryons $Ξ(2030)$ and $Ξ(2120)$. https://arxiv.org/abs/2310.12492

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