PaperPanorama

Nuclear Theory·nucl-th

Friday·July 22, 2016

6 papers4 primary·2 cross-listed

  1. 05

    [Submitted on 11 Feb 2016] (cross-list from gr-qc)

    On neutron stars in f(R) theories: small radii, large masses and large energy emitted in a merger

    Miguel Aparicio Resco🇪🇸 · Alvaro de la Cruz-Dombriz🇿🇦 · Felipe J. Llanes-Estrada🇪🇸 · Victor Zapatero Castrillo🇪🇸

    In the context of f(R) gravity theories, we show that the apparent mass of a neutron star as seen from an observer at infinity is numerically calculable but requires careful matching, first at the star's edge, between interior and exterior solutions, none of them being totally Schwarzschild-like but presenting instead small oscillations of the curvature scalar R; and second at large radii, where the Newtonian potential is used to identify the mass of the neutron star. We find that for the same equation of state, this mass definition is always larger than its general relativistic counterpart. We exemplify this with quadratic and Hu-Sawicki-like modifications of the standard General Relativity action. Therefore, the finding of two-solar mass neutron stars basically imposes no constraint on stable f(R) theories. However, star radii are in general smaller than in General Relativity, which can give an observational handle on such classes of models at the astrophysical level. Both larger masses and smaller matter radii are due to much of the apparent effective energy residing in the outer metric for scalar-tensor theories. Finally, because the f(R) neutron star masses can be much larger than General Relativity counterparts, the total energy available for radiating gravitational waves could be of order several solar masses, and thus a merger of these stars constitutes an interesting wave source.

    Comments:
    19 pages, 23 plots. Irrelevant paragraph deleted
    Subjects:
    General Relativity and Quantum Cosmology (gr-qc); Cosmology and Nongalactic Astrophysics (astro-ph.CO); Nuclear Theory (nucl-th)
    arXiv:
    1602.03880 [pdf]
    Phys.Dark Univ.(2016)·109 citations
  2. 06

    [Submitted on 21 Jul 2016] (cross-list from nucl-ex)

    Effects of Nuclear Potential on the Cumulants of Net-Proton and Net-Baryon Multiplicity Distributions in Au+Au Collisions at

    Shu He🇨🇳 · Xiaofeng Luo🇨🇳 · Yasushi Nara🇯🇵 · ShinIchi Esumi🇯🇵 · Nu Xu🇨🇳

    We analyze the rapidity and transverse momentum dependence for the cumulants of the net-proton and net-baryon distributions in Au+Au collisions at with a microscopic hadronic transport (JAM) model. To study the effects of mean field potential and softening of equation of state (EoS) on the fluctuations of net-proton (baryon) in heavy-ion collisions, the calculations are performed with two different modes. The softening of EoS is realized in the model by implementing the attractive orbit in the two-body scattering to introduce a reduction pressure of the system. By comparing the results from the two modes with the results from default cascade, we find the mean field potential and softening of EoS have strong impacts on the rapidity distributions () and the shape of the net-proton (baryon) multiplicity distributions. The net-proton (baryon) cumulants and their ratios calculated from all of the three modes are with similar trends and show significant suppression with respect to unity, which can be explained by the presence of baryon number conservations. It indicates that the effects of mean field potential and softening of EoS might be not the ingredients that are responsible to the observed strong enhancement in the most central Au+Au collisions at 7.7 GeV measured by the STAR experiment at RHIC.

    Comments:
    6 pages, 5 figures
    Subjects:
    Nuclear Experiment (nucl-ex); Nuclear Theory (nucl-th)
    arXiv:
    1607.06376 [pdf]
    PLB(2016)·34 citations

Affiliations

first authorsco-authorsvia INSPIRE