Analysis of the hidden-charm pentaquark candidates in the mass spectrum via the QCD sum rules
arXiv:2508.17373 · doi:10.1140/epjc/s10052-026-15680-6
Abstract
In this work, we distinguish the isospin for the first time and study the diquark-diquark-antiquark type pentaquark states with zero isospin via the QCD sum rules systematically. We distinguish contributions of the pentaquark states with negative parity from positive parity unambiguously and obtain clean QCD sum rules for the pentaquark states with negative parity. Then we adopt the modified energy scale formula to choose the optimal energy scales of the QCD spectral densities, and obtain the mass spectrum of the pentaquark states with the quantum numbers and , , , which could interpret the and in the mass spectrum naturally.
19 pages, 19 figures
References in corpus (18)
- Evidence of a structure and observation of excited states in the decay
- Establishing the first hidden-charm pentaquark with strangeness
- Analysis of the doubly-charmed tetraquark molecular states with the QCD sum rules
- Analysis of the as the hidden-charm pentaquark state with QCD sum rules
- The Dynamical Diquark Model: First Numerical Results
- Magnetic dipole moments of the hidden-charm pentaquark states: , and
- Analysis of the hidden-charm tetraquark molecule mass spectrum with the QCD sum rules
- Strong decays of the newly as a strange hidden-charm molecule
- A new look at the states from a molecular perspective
- Investigation of magnetic moment of and pentaquark states
- Investigation of pentaquark via its strong decay to
- Strange hidden-charm and pentaquarks and additional , and candidates in a quark model approach
- Investigation of hidden-charm pentaquarks with strangeness
- The double thresholds distort the lineshapes of the resonance
- Pole determination of and possible in
- Study of isospin eigenstates of the pentaquark molecular states with strangeness
- Analysis of the pentaquark states in the diquark model with QCD sum rules
- The Higgs Field and the Jordan Brans Dicke Cosmology