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Thermal Dileptons from Coarse-Grained Transport as Fireball Probes at SIS Energies

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arxiv 1512.08688 v2 pith:VBOG33WX submitted 2015-12-29 nucl-th

classification nucl-th
keywords spectraenergiesfireballinvariant-masslifetimeradiationthermalcoarse-grained
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

Utilizing a coarse-graining method to convert hadronic transport simulations of Au+Au collisions at SIS energies into local temperature, baryon and pion densities, we compute the pertinent radiation of thermal dileptons based on an in-medium $\rho$ spectral function that describes available spectra at ultrarelativistic collision energies. In particular, we analyze how far the resulting yields and slopes of the invariant-mass spectra can probe the lifetime and temperatures of the fireball. We find that dilepton radiation sets in after the initial overlap phase of the colliding nuclei of about 7 fm/c, and lasts for about 13 fm/c. This duration closely coincides with the development of the transverse collectivity of the baryons, thus establishing a direct correlation between hadronic collective effects and thermal EM radiation, and supporting a near local equilibration of the system. This fireball "lifetime" is substantially smaller than the typical 20-30 fm/c that naive considerations of the density evolution alone would suggest. We furthermore find that the total dilepton yield radiated into the invariant-mass window of $M=0.3-0.7$ GeV/$c^{2}$, normalized to the number of charged pions, follows a relation to the lifetime found earlier in the (ultra-) relativistic regime of heavy-ion collisions, and thus corroborates the versatility of this tool. The spectral slopes of the invariant-mass spectra above the $\phi$ mass provide a thermometer of the hottest phases of the collision, and agree well with the maximal temperatures extracted from the coarse-grained hadron spectra.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Photon Emission from Nucleon-Nucleon Bremsstrahlung in Fermi-energy Heavy-Ion Collisions

    nucl-th 2025-06 conditional novelty 6.0 of 10

    In Fermi-energy heavy-ion collisions, most hard photons are produced in the first nucleon-nucleon collisions while the nuclei still move collectively, not in the later thermalized matter.

  2. Future facilities: the CERN SPS

    nucl-ex 2025-05 unverdicted novelty 4.0 of 10

    A proceedings summary of the SPS heavy-ion program: NA61/SHINE reports a first D0 signal at 16.8 GeV, and NA60+ proposes precision dimuon, charm, and quarkonium studies at high baryochemical potential.

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