English

In-medium Spectral Functions in a Coarse-Graining Approach

Nuclear Theory 2015-04-29 v2 High Energy Physics - Phenomenology

Abstract

We use a coarse-graining approach to extract local thermodynamic properties from simulations with a microscopic transport model by averaging over a large ensemble of events. Setting up a grid of small space-time cells and going into each cell's rest frame allows to determine baryon and energy density. With help of an equation of state we get the corresponding temperature TT and baryon-chemical potential μB\mu_{\mathrm{B}}. These results are used for the calculation of the thermal dilepton yield. We apply and compare two different spectral functions for the ρ\rho meson, firstly a calculation from hadronic many-body theory and secondly a calculation from experimental scattering amplitudes. The results obtained with our approach are compared to measurements of the NA60 Collaboration. A relatively good description of the data is achieved with both spectral functions. However, the hadronic many-body calculation is found to be closer to the experimental data with regard to the in-medium broadening of the spectral shape.

Keywords

Cite

@article{arxiv.1412.2554,
  title  = {In-medium Spectral Functions in a Coarse-Graining Approach},
  author = {Stephan Endres and Hendrik van Hees and Janus Weil and Marcus Bleicher},
  journal= {arXiv preprint arXiv:1412.2554},
  year   = {2015}
}

Comments

5 pages, 1 figure; Contribution for FAIRNESS 2014 proceedings

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