Abstract
The Λc(2590)Σc system can exchange a pion near the mass-shell. Owing to the opposite intrinsic parity of the Λc(2590) and Σc, the pion is exchanged in S-wave. This gives rise to a Coulomb-like force that might be able to bind the system. If one takes into account that the pion is not exactly on the mass shell, there is a shallow S-wave state, which we generically call the Ycc(5045) and Ycc(5045) for the Λc(2590)Σc and Λc(2590)Σc systems respectively. For the baryon-antibaryon case this Coulomb-like force is independent of spin: the Ycc(5045) baryonia will appear either in the spin S=0 or S=1 configurations with G-parities G=(-1)L+S+1. For the baryon-baryon case the Coulomb-like force is attractive in the spin S=0 configuration, for which a doubly charmed molecule is expected to form near the threshold. This type of spectrum might be very well realized in other molecular states composed of two opposite parity hadrons with the same spin and a mass difference close to that of a pseudo-Goldstone boson, of which a few examples include the Λ(1405)N, Λ(1520)Σ∗, Ξ(1690)Σ, Ds0∗(2317)D and Ds1∗(2460)D∗ molecules.
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CITATION STYLE
Geng, L. S., Lu, J. X., Valderrama, M. P., & Ren, X. L. (2018). Are there near-threshold Coulomb-like Baryonia? Physical Review D, 97(9). https://doi.org/10.1103/PhysRevD.97.091501
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