English

Temperature and density effects on the two-nucleon momentum correlation function from excited single nuclei

Nuclear Theory 2023-01-10 v1

Abstract

Two-nucleon momentum correlation functions are investigated for different single thermal sources at given initial temperature (T)(T) and density (ρ)(\rho). To this end, the space-time evolutions of various single excited nuclei at TT =120= 1 - 20 MeVMeV and ρ\rho = 0.2 - 1.2 ρ0\rho_0 are simulated by using the thermal isospin-dependent quantum molecular dynamics (ThIQMD)(ThIQMD) model. Momentum correlation functions of identical proton-pairs (Cpp(q)C_{pp}(q)) or neutron-pairs (Cnn(q)C_{nn}(q)) at small relative momenta are calculated by LednickyˊLednick\acute{y} and LyuboshitzLyuboshitz analytical method. The results illustrate that Cpp(q)C_{pp}(q) and Cnn(q)C_{nn}(q) are sensitive to the source size (AA) at lower TT or higher ρ\rho, but almost not at higher TT or lower ρ\rho. And the sensitivities become stronger for smaller source. Moreover, the TT, ρ\rho and AA dependencies of the Gaussian source radii are also extracted by fitting the two-proton momentum correlation functions, and the results are consistent with the above conclusions.

Keywords

Cite

@article{arxiv.2301.02849,
  title  = {Temperature and density effects on the two-nucleon momentum correlation function from excited single nuclei},
  author = {Ting-Ting Wang and Yu-Gang Ma and De-Qing Fang and Huan-Ling Liu},
  journal= {arXiv preprint arXiv:2301.02849},
  year   = {2023}
}

Comments

9 pages, 9 figures

R2 v1 2026-06-28T08:06:00.909Z