Selfconsistent evaluation of charm and charmonium in the quark-gluon plasma

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Abstract

A selfconsistent calculation of heavy-quark (HQ) and quarkonium properties in the quark-gluon plasma (QGP) is conducted to quantify flavor transport and color screening in the medium. The main tool is a thermodynamic T-matrix approach to compute HQ and quarkonium spectral functions in both scattering and bound-state regimes. The T-matrix, in turn, is employed to calculate HQ selfenergies which are implemented into spectral functions beyond the quasiparticle approximation. Charmonium spectral functions are used to evaluate Eulcidean-time correlation functions, which are compared to results from thermal lattice QCD. The comparisons are performed in various hadronic channels, including zero-mode contributions consistently accounting for finite charm-quark width effects. The zero modes are closely related to the charmquark number susceptibility, which is also compared to existing lattice 'data'. Both the susceptibility and the heavy-light quark T-matrix are applied to calculate the thermal charm-quark relaxation rate, or, equivalently, the charm diffusion constant in the QGP. Implications of our findings in the HQ sector for the viscosity-to-entropy-density ratio of the QGP are briefly discussed. © IOP Publishing Ltd and Deutsche Physikalische Gesellschaft.

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APA

Riek, F., & Rapp, R. (2011). Selfconsistent evaluation of charm and charmonium in the quark-gluon plasma. New Journal of Physics, 13. https://doi.org/10.1088/1367-2630/13/4/045007

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