Article ID Journal Published Year Pages File Type
1836815 Nuclear Physics A 2013 14 Pages PDF
Abstract

The bottomonium spectral functions at finite temperature are analyzed by employing QCD sum rules with the maximum entropy method. This approach enables us to extract the spectral functions without any phenomenological parametrization, and thus to visualize deformation of the spectral functions due to temperature effects estimated from quenched lattice QCD data. As a result, it is found that ϒ and ηb survive in hot matter of temperature up to at least 2.3Tc and 2.1Tc, respectively, while χb0 and χb1 will disappear at T<2.5Tc. Furthermore, a detailed analysis of the vector channel shows that the spectral function in the region of the lowest peak at T=0 contains contributions from the excited states, ϒ(2S) and ϒ(3S), as well as the ground states ϒ(1S). Our results at finite T are consistent with the picture that the excited states of bottomonia dissociate at lower temperature than that of the ground state. Assuming this picture, we find that ϒ(2S) and ϒ(3S) disappear at T=1.5–2.0Tc.

Related Topics
Physical Sciences and Engineering Physics and Astronomy Nuclear and High Energy Physics