PaperPanorama

Nuclear Theory·nucl-th

Friday·October 26, 2018

7 papers2 primary·5 cross-listed

  1. 01

    Tidal deformability with sharp phase transitions in (binary) neutron stars

    Sophia Han🇺🇸 · Andrew W. Steiner🇺🇸

    The neutron star tidal deformability is a critical parameter which determines the pre-merger gravitational-wave signal in a neutron star merger. In this article, we show how neutron star tidal deformabilities behave in the presence of one or two sharp phase transition(s). We characterize how the tidal deformability changes when the properties of these phase transitions are modified in dense matter equation of state (EoS). Sharp phase transitions lead to the smallest possible tidal deformabilities and also induce discontinuities in the relation between tidal deformability and gravitational mass. These results are qualitatively unmodified by a modest softening of the phase transition. Finally, we test two universal relations involving the tidal deformability and show that their accuracy is limited by sharp phase transitions.

    nucl-thastro-ph.HEastro-ph.SRPRD(2019)·187 citations
  2. 02

    Predicting the moment of inertia of pulsar J0737-3039A from Bayesian modeling of the nuclear equation of state

    Yeunhwan Lim🇺🇸 · Jeremy W. Holt🇺🇸 · Robert J. Stahulak🇺🇸

    We investigate neutron star moments of inertia from Bayesian posterior probability distributions of the nuclear equation of state that incorporate information from microscopic many-body theory and empirical data of finite nuclei. We focus on PSR J0737-3039A and predict that for this 1.338 M_sun neutron star the moment of inertia lies in the range g cm g cm at the 95% credibility level, while the most probable value for the moment of inertia is g cm. Assuming a measurement of the PSR J0737-3039A moment of inertia to 10% precision, we study the implications for neutron star radii and tidal deformabilities. We also determine the crustal component of the moment of inertia and find that for typical neutron star masses of 1.3 M_sun < M < 1.5 M_sun the crust contributes 1% - 6% of the total moment of inertia, below what is needed to explain large pulsar glitches in the scenario of strong neutron entrainment.

    nucl-thastro-ph.HEPRC(2019)·49 citations

Affiliations

first authorsco-authorsvia INSPIRE