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Nuclear matter and its role in supernovae, neutron stars and compact object binary mergers

  • Stony Brook University

Research output: Contribution to journalShort surveypeer-review

312 Scopus citations

Abstract

The equation of state (EOS) of dense matter plays an important role in the supernova phenomenon, the structure of neutron stars, and in the mergers of compact objects (neutron stars and black holes). During the collapse phase of a supernova, the EOS at subnuclear densities controls the collapse rate, the amount of deleptonization and thus the size of the collapsing core and the bounce density. Properties of nuclear matter that are especially crucial are the symmetry energy and the nuclear specific heat. The nuclear incompressibility, and the supernuclear EOS, play supporting roles. In a similar way, although the maximum masses of neutron stars are entirely dependent upon the supernuclear EOS, other important structural aspects are more sensitive to the equation of state at nuclear densities. The radii, moments of inertia, and the relative binding energies of neutron stars are, in particular, sensitive to the behavior of the nuclear symmetry energy. The dependence of the radius of a neutron star on its mass is shown to critically influence the outcome of the compact merger of two neutron stars or a neutron star with a small mass black hole. This latter topic is especially relevant to this volume, since it stems from research prompted by the tutoring of David Schramm a quarter century ago.

Original languageEnglish
Pages (from-to)121-146
Number of pages26
JournalPhysics Reports
Volume333-334
Issue number4-6
DOIs
StatePublished - Aug 2000

Keywords

  • 26.50.+x
  • 26.60.+c
  • 97.60.Bw
  • 97.60.Jd
  • 97.80. - d
  • Binary mergers
  • Neutron stars
  • Nuclear matter
  • Supernovae

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