\begin{document}$ P_c(4312) $\end{document} and its possible higher isospin cousin \begin{document}$ P_c(4330) $\end{document} in the framework of the QCD sum rules. Further, the pole residue of the Δ baryon with isospin eigenstate \begin{document}$ |II_3\rangle=|\frac{3}{2}\frac{1}{2}\rangle $\end{document} is obtained. If the possible pentaquark molecule candidate \begin{document}$ P_c(4330) $\end{document} could be determined, it would shed light on the interpretations of the \begin{document}$ P_c $\end{document} states in future experiments."> Strong decays of the <i>P</i><sub>c</sub>(4312) and its isospin cousin via the QCD sum rules -
  • [1]

    R. Aaijet al., Phys. Rev. Lett.115, 072001 (2015)

  • [2]

    R. Aaijet al., Phys. Rev. Lett.122, 222001 (2019)

  • [3]

    R. Aaijet al., Sci. Bull.66, 1278 (2021)

  • [4]

    R. Aaijet al., Phys. Rev. Lett.128, 062001 (2022)

  • [5]

    R. Aaijet al., Phys. Rev. Lett.131, 031901 (2023)

  • [6]

    C. W. Xiao, J. Nieves, and E. Oset, Phys. Rev. D100, 014021 (2019)

  • [7]

    J. He, Eur. Phys. J. C79, 393 (2019)

  • [8]

    H. X. Chen, W. Chen, X. Liuet al., Phys. Rev. Lett.115, 172001 (2015)

  • [9]

    H. X. Chen, W. Chen, and S. L. Zhu, Phys. Rev. D100, 051501 (2019)

  • [10]

    Z. G. Wang, Int. J. Mod. Phys. A34, 1950097 (2019)

  • [11]

    M. L. Du, V. Baru, F. K. Guoet al., Phys. Rev. Lett.124, 072001 (2020)

  • [12]

    L. Meng, B. Wang, G. J. Wanget al., Phys. Rev. D100, 014031 (2019)

  • [13]

    M. Z. Liu, T. W. Wu, M. S. Sanchezet al., Phys. Rev. D103, 054004 (2021)

  • [14]

    J. R. Zhang, Eur. Phys. J. C79, 1001 (2019)

  • [15]

    K. Azizi, Y. Sarac, and H. Sundu, Chin. Phys. C45, 053103 (2021)

  • [16]

    X. W. Wang, Z. G. Wang, G. L. Yuet al., Sci. China Phys. Mech. Astron.65, 291011 (2022)

  • [17]

    X. W. Wang and Z. G. Wang, Int. J. Mod. Phys. A37, 2250189 (2022)

  • [18]

    X. W. Wang and Z. G. Wang, Chin. Phys. C47, 013109 (2023)

  • [19]

    Z. G. Wang, Eur. Phys. J. C76, 70 (2016)

  • [20]

    Z. G. Wang, Int. J. Mod. Phys. A35, 2050003 (2020)

  • [21]

    Z. G. Wang, Chin. Phys. C45, 073107 (2021)

  • [22]

    Y. H. Lin and B. S. Zou, Phys. Rev. D100, 056005 (2019)

  • [23]

    G. J. Wang, L. Y. Xiao, R. Chenet al., Phys. Rev. D102, 036012 (2020)

  • [24]

    J. He and D. Y. Chen, Eur. Phys. J. C79, 887 (2019)

  • [25]

    T. Gutsche and V. E. Lyubovitskij, Phys. Rev. D100, 094031 (2019)

  • [26]

    Z. G. Wang and X. Wang, Chin. Phys. C44, 103102 (2020)

  • [27]

    Y. J. Xu, C. Y. Cui, Y. L. Liuet al., Phys. Rev. D102, 034028 (2020)

  • [28]

    S. Sakai, H. J. Jing, and F. K. Guo, Phys. Rev. D100, 074007 (2019)

  • [29]

    M. A. Shifman, A. I. Vainshtein, and V. I. Zakharov, Nucl. Phys. B147, 385 (1979)

  • [30]

    M. A. Shifman, A. I. Vainshtein, and V. I. Zakharov, Nucl. Phys. B147, 448 (1979)

  • [31]

    L. J. Reinders, H. Rubinstein, and S. Yazaki, Phys. Rept.127, 1 (1985)

  • [32]

    P. Colangelo and A. Khodjamirian, arXiv: hep-ph/0010175

  • [33]

    Z. G. Wang and J. X. Zhang, Eur. Phys. J. C78, 14 (2018)

  • [34]

    Z. G. Wang, Eur. Phys. J. C79, 184 (2019)

  • [35]

    Z. G. Wang and Z. Y. Di, Eur. Phys. J. C79, 72 (2019)

  • [36]

    Z. G. Wang, Acta Phys. Polon. B51, 435 (2020)

  • [37]

    Z. G. Wang, Int. J. Mod. Phys. A34, 1950110 (2019)

  • [38]

    Z. G. Wang, H. J. Wang, and Q. Xin, Chin. Phys. C45, 063104 (2021)

  • [39]

    H. F. Jones and M. D. Scadron, Ann. Phys.81, 1 (1973)

  • [40]

    P. A. Zylaet al., Prog. Theor. Exp. Phys.2020, 083C01 (2020)

  • [41]

    S. Narison and R. Tarrach, Phys. Lett. B125, 217 (1983)

  • [42]

    Z. G. Wang and T. Huang, Phys. Rev. D89, 054019 (2014)

  • [43]

    D. Becirevic, G. Duplancic, B. Klajnet al., Nucl. Phys. B883, 306 (2014)

  • [44]

    B. L. Ioffe, Prog. Part. Nucl. Phys.56, 232 (2006)

  • [45]

    X. W. Wang and Z. G. Wang, arXiv: 2307.11321[hep-ph]

  • [46]

    Z. G. Wang, Chin. Phys. C46, 123106 (2022)

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