4.5 Article

Symmetry energy of nucleonic matter with tensor correlations

期刊

PHYSICAL REVIEW C
卷 91, 期 2, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevC.91.025803

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资金

  1. Israel Science Foundation
  2. U.S. National Science Foundation [PHY-1068022]
  3. U.S. National Aeronautics and Space Administration under Science Mission Directorate [NNX11AC41G]
  4. CUSTIPEN (China-U.S. Theory Institute for Physics with Exotic Nuclei) under DOE [DE-FG02-13ER42025]
  5. National Natural Science Foundation of China [11320101004, 10905041]
  6. China Scholarship Council Foundation [201208310156]
  7. U.S. Department of Energy [DE-SC00006801, DE-FG02-96ER40960]
  8. Division Of Physics
  9. Direct For Mathematical & Physical Scien [1068022] Funding Source: National Science Foundation
  10. U.S. Department of Energy (DOE) [DE-FG02-96ER40960] Funding Source: U.S. Department of Energy (DOE)

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The nuclear symmetry energy (E-sym(rho)) is a vital ingredient of our understanding of many processes, from heavy-ion collisions to neutron stars structure. While the total nuclear symmetry energy at nuclear saturation density (rho(0)) is relatively well determined, its value at supranuclear densities is not. The latter can be better constrained by separately examining its kinetic and potential terms and their density dependencies. The kinetic term of the symmetry energy, E-sym(kin) (rho(0)), equals the difference in the per-nucleon kinetic energy between pure neutron matter (PNM) and symmetric nuclear matter (SNM), often calculated using a simple Fermi gas model. However, experiments show that tensor force induced short-range correlations (SRC) between proton-neutron pairs shift nucleons to high momentum in SNM, where there are equal numbers of neutrons and protons, but have almost no effect in PNM. We present an approximate analytical expression for E-sym(kin) (rho(0)) of correlated nucleonic matter. In our model, E-sym(kin) (rho(0)) = -10 MeV, which differs significantly from +12.5 MeV for the widely-used free Fermi gas model. This result is consistent with our analysis of recent data on the free proton-to-neutron ratios measured in intermediate energy nucleus-nucleus collisions as well as with microscopic many-body calculations, and previous phenomenological extractions. We then use our calculated E-sym(kin) (rho) in combination with the known total symmetry energy and its density dependence at saturation density to constrain the value and density dependence of the potential part and to extrapolate the total symmetry energy to supranuclear densities.

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