arXiv:2503.04586·v1·High Energy Physics — Phenomenology
Investigating the nature of and in a quenched chiral quark model
Yue Tan🇨🇳 · Zi-Xuan Ma🇨🇳 · Xiaoyun Chen🇨🇳 · Xiaohuang Hu🇨🇳 · Youchang Yang🇨🇳 · Qi Huang🇨🇳 · Jialun Ping🇨🇳
Abstract
In this work, we systematically study , , and in both the quenched three-quark and five-quark frameworks using the Gaussian Expansion Method (GEM) within the chiral quark model. Our calculations show that can be reproduced as a three-quark state (), while and cannot be accommodated as the three-quark candidates, ( and ), respectively. In the five-quark framework, we find that the state for can not form a bound state, while in the channel there will form a shallow bound state. Based on the complex-scaling method, we performed complete coupled-channels calculations and obtained six resonance states with energies ranging from 1.8 GeV to 2.2 GeV, in addition with one bound state located around channel. However, neither molecular candidates in channel for nor for are included in these states. This is because the strong coupling between and will make the unbound, while the weak coupling between and can not help form a stable structure around threshold. Thus, under the quenched quark model, our results support as a three-quark state, while is neither a three-quark nor a five-quark state. In addition, we find that although can be primarily a five-quark state, it requires a mixture of three-quark and five-quark components for stability. In the future, an exploration on the mixing effects between bare baryons with these relevant two-body hadronic channel components will be carried out to further test our conclusions.