In-medium P-wave quarkonium from the complex lattice QCD potential
Journal of High Energy Physics, 2016•Springer
A bstract We extend our lattice QCD potential based study [1] of the in-medium properties of
heavy quark bound states to P-wave bottomonium and charmonium. Similar to the behavior
found in the S-wave channel their spectra show a characteristic broadening, as well as mass
shifts to lower energy with increasing temperature. In contrast to the S-wave states, finite
angular momentum leads to the survival of spectral peaks even at temperatures, where the
continuum threshold reaches below the bound state remnant mass. We elaborate on the …
heavy quark bound states to P-wave bottomonium and charmonium. Similar to the behavior
found in the S-wave channel their spectra show a characteristic broadening, as well as mass
shifts to lower energy with increasing temperature. In contrast to the S-wave states, finite
angular momentum leads to the survival of spectral peaks even at temperatures, where the
continuum threshold reaches below the bound state remnant mass. We elaborate on the …
Abstract
We extend our lattice QCD potential based study [1] of the in-medium properties of heavy quark bound states to P-wave bottomonium and charmonium. Similar to the behavior found in the S-wave channel their spectra show a characteristic broadening, as well as mass shifts to lower energy with increasing temperature. In contrast to the S-wave states, finite angular momentum leads to the survival of spectral peaks even at temperatures, where the continuum threshold reaches below the bound state remnant mass. We elaborate on the ensuing challenges in defining quarkonium dissolution and present estimates of melting temperatures for the spin averaged χ b and χ c states. As an application to heavy-ion collisions we further estimate the contribution of feed down to S-wave quarkonium through the P-wave states after freezeout.
Springer