Temperature and density effects on the two-nucleon momentum correlation function from excited single nuclei
Abstract
Two-nucleon momentum correlation functions are investigated for different single thermal sources at given initial temperature and density . To this end, the space-time evolutions of various single excited nuclei at and = 0.2 - 1.2 are simulated by using the thermal isospin-dependent quantum molecular dynamics model. Momentum correlation functions of identical proton-pairs () or neutron-pairs () at small relative momenta are calculated by and analytical method. The results illustrate that and are sensitive to the source size () at lower or higher , but almost not at higher or lower . And the sensitivities become stronger for smaller source. Moreover, the , and 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.
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