arXiv:2503.10173·v2·High Energy Physics — Phenomenology
Hidden heavy flavor tetraquarks in the Born-Oppenheimer approximation
Bowen Kang🇨🇳 · Xi Xia🇨🇳 · Tao Guo🇨🇳
Abstract
The Born-Oppenheimer approximation is one of the very successful tools for solving the hydrogen atom problem. The experimental discovery of hidden heavy flavor tetraquarks, ( and ), provides great possibilities for the hydrogen-bond-like structure of the Quantum Chromodynamics version. In this work, considering that the colors of and are both , the tetraquark system is formed by color coupling . In order to study the mass splitting caused by the color-spin hyperfine interaction, the color-spin basis vectors of the -wave tetraquark states are appropriately constructed. Then we use the Born-Oppenheimer approximation to calculate the mass spectra of the -wave hidden heavy flavor tetraquark states. The results show that some of the hidden heavy flavor exotic hadrons discovered experimentally can be well explained as this type of hydrogen-bond-like tetraquark structure. In addition, some candidates for tetraquark bound states are predicted and may be compact tetraquark states.
Comments: 9 pages, 7 figures, and 8 tables