Charmonia decay widths in magnetized matter using a model for composite hadrons
Abstract
The decay widths of the charmonium states to in isospin asymmetric nuclear matter in the presence of a magnetic field are studied, using a field theoretical model for composite hadrons with quark/antiquark constituents. The medium modifications of these partial decay widths arise due to the changes in the masses of the decaying charmonium state and the produced and mesons in the magnetized hadronic matter, calculated within a chiral effective model. The decay widths are computed using the light quark--antiquark pair creation term of the free Dirac Hamiltonian in terms of the constituent quark field operators. The results of the present investigation are compared with the in-medium decay widths obtained within the model. Within the model, the charmonium decay widths are calculated using the creation of a light quark--antiquark pair in the state. In the presence of a magnetic field, the Landau level contributions give rise to positive shifts in the masses of the charged and mesons. This leads to the decay of charmonium to the charged to be suppressed as compared to the neutral pair in symmetric nuclear matter, whereas in asymmetric nuclear matter, the larger mass drop of the pair, as compared to the pair leads to the production of charged open charm meson pairs to be enhanced as compared to the charmonium decay channel to .
Keywords
Cite
@article{arxiv.1901.06259,
title = {Charmonia decay widths in magnetized matter using a model for composite hadrons},
author = {Amruta Mishra and S. P. Misra},
journal= {arXiv preprint arXiv:1901.06259},
year = {2019}
}
Comments
Major revision, 26 pages, 7 figures