Probing the evolution of heavy-ion collisions using direct photon interferometry
arXiv:1909.12246 · doi:10.1103/PhysRevC.102.024915
Abstract
We investigate the measurement of Hanbury Brown-Twiss (HBT) photon correlations as an experimental tool to discriminate different sources of photon enhancement, which are proposed to simultaneously reproduce the direct photon yield and the azimuthal anisotropy measured in nuclear collisions at RHIC and the LHC. To showcase this, we consider two different scenarios in which we enhance the yields from standard hydrodynamical simulations. In the first, additional photons are produced from the early pre-equilibrium stage computed from the \textit{bottom-up} thermalization scenario. In the second, the thermal rates are enhanced close to the pseudo-critical temperature using a phenomenological ansatz. We compute the correlators for relative momenta and for different transverse pair momenta, , and find that the longitudinal correlation is the most sensitive to different photon sources. Our results also demonstrate that including anisotropic pre-equilibrium rates enhances non-Gaussianities in the correlators, which can be quantified using the kurtosis of the correlators. Finally, we study the feasibility of measuring a direct photon HBT signal in the upcoming high-luminosity LHC runs. Considering only statistical uncertainties, we find that with the projected heavy ion events a measurement of the HBT correlations for is statistically significant.
References in corpus (10)
- Glauber Modeling in High Energy Nuclear Collisions
- Spatial quantum noise interferometry in expanding ultracold atom clouds
- Analysis of combined HERA data in the Impact-Parameter dependent Saturation model
- Wilson line correlator in the MV model: relating the glasma to deep inelastic scattering
- Pseudo-Critical Enhancement of Thermal Photons in Relativistic Heavy-Ion Collisions
- Direct real photons in relativistic heavy ion collisions
- Universal Parametrization of Thermal Photon Rates in Hadronic Matter
- Low-Energy Thermal Photons from Meson-Meson Bremsstrahlung
- Prompt, pre-equilibrium, and thermal photons in relativistic nuclear collisions
- Non-equilibrium photons from the bottom-up thermalization scenario