Charmoniumlike Channels $1^{+}$ with Isospin $1$ from Lattice and Effective Field Theory
Abstract
Many exotic charmoniumlike mesons have already been discovered experimentally, of which the mesons with are prominent examples. We investigate states with flavor () in using lattice QCD. This is the first study of these mesons employing more than one volume and involving frames with nonzero total momentum. We utilize two CLS ensembles with MeV. The simulations are performed with unphysical light quark masses at a single lattice spacing of fm and omit , and three-particle decay channels, so our results provide only qualitative insights. Resulting eigenenergies are compatible or just slightly shifted down with respect to noninteracting energies, where the most significant shifts occur for certain states. Both channels have a virtual pole slightly below the threshold if is assumed to be decoupled from other channels. In addition, we perform a coupled channel analysis of and scattering with within an effective field theory framework. The and line shapes from BESIII and finite-volume energies from several lattice QCD simulations, including this work, are fitted simultaneously. All fits yield two poles relatively close to the threshold and reasonably reproduce the experimental peaks. They also reproduce lattice energies up to slightly above the threshold, while reproduction at even higher energies is better for fits that put more weight on the lattice data. Our findings suggest that the employed EFT can reasonably reconcile the peaks in the experimental line shapes and the lattice energies, although those lie close to noninteracting energies. We also study scattering in s wave and place upper bounds on the phase shift.
Cite
@article{arxiv.2406.09842,
title = {Charmoniumlike Channels $1^{+}$ with Isospin $1$ from Lattice and Effective Field Theory},
author = {Mitja Sadl and Sara Collins and Zhi-Hui Guo and M. Padmanath and Sasa Prelovsek and Lin-Wan Yan},
journal= {arXiv preprint arXiv:2406.09842},
year = {2025}
}
Comments
24 pages plus appendices, 29 figures, version accepted for publication in Phys. Rev. D.: several text/tables/figures corrections to improve clarity, additional Appendix G with info on neglected operators, results and conclusions did not change