Published March 15, 2006 | Version v1
Journal article

Merger of binary neutron stars to a black hole: Disk mass, short gamma-ray bursts, and quasinormal mode ringing

  • 1. Graduate School of Arts and Sciences, University of Tokyo, Komaba, Meguro, Tokyo 153-8902 (Japan)
  • 2. Department of Physics, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801-3080 (United States)

Description

Three-dimensional simulations for the merger of binary neutron stars are performed in the framework of full general relativity. We pay particular attention to the black hole formation case and to the resulting mass of the surrounding disk for exploring the possibility for formation of the central engine of short-duration gamma-ray bursts (SGRBs). Hybrid equations of state are adopted mimicking realistic, stiff nuclear equations of state (EOSs), for which the maximum allowed gravitational mass of cold and spherical neutron stars, Msph, is larger than 2M·. Such stiff EOSs are adopted motivated by the recent possible discovery of a heavy neutron star of mass ∼2.1±0.2M·. For the simulations, we focus on binary neutron stars of the ADM mass M > or approx. 2.6M·. For an ADM mass larger than the threshold mass Mthr, the merger results in prompt formation of a black hole irrespective of the mass ratio QM with 0.65 < or approx. QM≤1. The value of Mthr depends on the EOSs and is approximately written as 1.3-1.35Msph for the chosen EOSs. For the black hole formation case, we evolve the space-time using a black hole excision technique and determine the mass of a quasistationary disk surrounding the black hole. The disk mass steeply increases with decreasing the value of QM for given ADM mass and EOS. This suggests that a merger with small value of QM is a candidate for producing central engine of SGRBs. For M or approx. 0.01M· irrespective of QM. Gravitational waves are computed in terms of a gauge-invariant wave extraction technique. In the formation of the hypermassive neutron star, quasiperiodic gravitational waves of frequency between 3 and 3.5 kHz are emitted irrespective of EOSs. The effective amplitude of gravitational waves can be > or approx. 5x10-21 at a distance of 50 Mpc, and hence, it may be detected by advanced laser-interferometers. For the black hole formation case, the black hole excision technique enables a long-term computation and extraction of ring-down gravitational waves associated with a black hole quasinormal mode. It is found that the frequency and amplitude are ≅6.5-7 kHz and ∼10-22 at a distance of 50 Mpc for the binary of mass M≅2.7-2.9M·

Additional details

Publishing Information

Journal Title
Physical Review. D, Particles Fields
Journal Volume
73
Journal Issue
6
Journal Page Range
p. 064027-064027.29
ISSN
0556-2821
CODEN
PRVDAQ

Optional Information

Notes
(c) 2006 The American Physical Society