Spectroscopic Properties of Double-Strangeness Molecular Tetraquarks
Abstract
Inspired by recent advances in the study of the molecular tetraquarks and the -dibaryon, we focus on the spectroscopic properties of the systems, which exhibit exotic flavor quantum number of . A dynamical analysis is performed using the one-boson-exchange model to describe the effective interactions for these systems, accounting for both - wave mixing and coupled-channel effects. By solving the coupled-channel Schrdinger equation, we identify the and states as the most likely candidates for double-strangeness molecular tetraquarks. Furthermore, we estimate their strong decay behaviors based on the effective Lagrangian approach, with several channels exhibiting considerable decay widths. Meanwhile, we investigate their magnetic moments and M1 radiative decay widths, shedding light on their inner structures, within the constituent quark model. Finally, we encourage experimentalists to focus on these predicted double-strangeness molecular tetraquark candidates, particularly in meson decays. Such efforts could pave the way for establishing the molecular tetraquark states in the light-quark sector.
Cite
@article{arxiv.2410.15339,
title = {Spectroscopic Properties of Double-Strangeness Molecular Tetraquarks},
author = {Fu-Lai Wang and Si-Qiang Luo and Ri-Qing Qian and Xiang Liu},
journal= {arXiv preprint arXiv:2410.15339},
year = {2024}
}
Comments
16 pages, 4 figures, and 5 tables