Journal article

Electromagnetic emissivity of hot and dense matter


Authors listBratkovskaya, E. L.; Cassing, W.; Linnyk, O.

Publication year2017

Pages1038-1043

JournalAstronomical Notes

Volume number338

Issue number9-10

ISSN0004-6337

eISSN1521-3994

DOI Linkhttps://doi.org/10.1002/asna.201713431

PublisherWiley


Abstract
The Quantum-Chromo Dynamics (QCD) matter produced initially in ultrarelativistic nucleus-nucleus collisions is expected to represent a high temperature plasma, which should be evidenced in its electromagnetic radiation. We analyze the production of real and virtual photons from the strongly coupled Quark-Gluon Plasma (QGP) in the initial stages of the collisions as well as the (corona) radiation from the interacting mesons and baryons after hadronization using the parton-hadron-string dynamics (PHSD) transport approach. The description of the bulk evolution in the microscopic PHSD approach has been independently controlled by abundances, spectra, and flow of final particles and is found to be in agreement with experimental observation. In this study, we provide a brief description of the relevant physics assumptions within the PHSD approach and give details on the implementation of real and virtual photon radiation in partonic and hadronic interactions and decays. Our calculations have been found to successfully describe the production of photons and dileptons in proton-proton as well as nucleus-nucleus collisions in a wide range of bombarding energies as well.



Citation Styles

Harvard Citation styleBratkovskaya, E., Cassing, W. and Linnyk, O. (2017) Electromagnetic emissivity of hot and dense matter, Astronomical Notes, 338(9-10), pp. 1038-1043. https://doi.org/10.1002/asna.201713431

APA Citation styleBratkovskaya, E., Cassing, W., & Linnyk, O. (2017). Electromagnetic emissivity of hot and dense matter. Astronomical Notes. 338(9-10), 1038-1043. https://doi.org/10.1002/asna.201713431



Keywords


DILEPTON PRODUCTIONHEAVY-IONSNUCLEAR-MATTERPhotonsPLUS AU COLLISIONSQUARK-GLUON PLASMASTARtransport models

Last updated on 2025-02-04 at 01:26