Constraints on the symmetry energy and neutron skins from experiments and theory

  • M. B. Tsang
  • , J. R. Stone
  • , F. Camera
  • , P. Danielewicz
  • , S. Gandolfi
  • , K. Hebeler
  • , C. J. Horowitz
  • , Jenny Lee
  • , W. G. Lynch
  • , Z. Kohley
  • , R. Lemmon
  • , P. Möller
  • , T. Murakami
  • , S. Riordan
  • , X. Roca-Maza
  • , F. Sammarruca
  • , A. W. Steiner
  • , I. Vidaña
  • , S. J. Yennello

Research output: Contribution to journalArticlepeer-review

644 Scopus citations

Abstract

The symmetry energy contribution to the nuclear equation of state impacts various phenomena in nuclear astrophysics, nuclear structure, and nuclear reactions. Its determination is a key objective of contemporary nuclear physics, with consequences for the understanding of dense matter within neutron stars. We examine the results of laboratory experiments that have provided initial constraints on the nuclear symmetry energy and on its density dependence at and somewhat below normal nuclear matter density. Even though some of these constraints have been derived from properties of nuclei while others have been derived from the nuclear response to electroweak and hadronic probes, within experimental uncertainties-they are consistent with each other. We also examine the most frequently used theoretical models that predict the symmetry energy and its slope parameter. By comparing existing constraints on the symmetry pressure to theories, we demonstrate how contributions of three-body forces, which are essential ingredients in neutron matter models, can be determined.

Original languageEnglish
Article number015803
JournalPhysical Review C - Nuclear Physics
Volume86
Issue number1
DOIs
StatePublished - 5 Jul 2012
Externally publishedYes

Funding

FundersFunder number
National Science Foundation1068571
Science and Technology Facilities CouncilST/J000108/1

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