Published June 20, 2017 | Version Published
Journal Article Open

Probing Extreme-density Matter with Gravitational-wave Observations of Binary Neutron Star Merger Remnants

  • 1. ROR icon Institute for Advanced Study
  • 2. ROR icon Princeton University
  • 3. ROR icon University of Parma
  • 4. ROR icon University of Pisa
  • 5. ROR icon Michigan State University
  • 6. ROR icon California Institute of Technology

Abstract

We present a proof-of-concept study, based on numerical-relativity simulations, of how gravitational waves (GWs) from neutron star merger remnants can probe the nature of matter at extreme densities. Phase transitions and extra degrees of freedom can emerge at densities beyond those reached during the inspiral, and typically result in a softening of the equation of state (EOS). We show that such physical effects change the qualitative dynamics of the remnant evolution, but they are not identifiable as a signature in the GW frequency, with the exception of possible black hole formation effects. The EOS softening is, instead, encoded in the GW luminosity and phase and is in principle detectable up to distances of the order of several megaparsecs with advanced detectors and up to hundreds of megaparsecs with third-generation detectors. Probing extreme-density matter will require going beyond the current paradigm and developing a more holistic strategy for modeling and analyzing postmerger GW signals.

Additional Information

© 2017 The American Astronomical Society. Received 2017 May 4; revised 2017 May 24; accepted 2017 June 2; published 2017 June 14. We thank S. Hild for the ET-D noise curve data and the anonymous referee for useful comments, and we acknowledge useful discussions with A. Burrows, T. Dietrich, S. Marka, L. Rezzolla, B. S. Sathyaprakash, and K. Takami. D.R. gratefully acknowledges support from the Schmidt Fellowship, the Sherman Fairchild Foundation and the Max-Planck/Princeton Center (MPPC) for Plasma Physics (NSF PHY-1523261). C.D.O. was partially supported by NSF awards CAREER PHY-1151197, PHY-1404569, and TCAN AST-1333520, and by the Sherman Fairchild Foundation. The simulations were performed on NSF XSEDE (TG-PHY160025), and on NSF/NCSA Blue Waters (NSF PRAC ACI-1440083).

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Additional details

Identifiers

Eprint ID
78267
Resolver ID
CaltechAUTHORS:20170616-100047138

Related works

Funding

Schmidt Fellowship
Sherman Fairchild Foundation
NSF
PHY-1523261
NSF
PHY-1151197
NSF
PHY-1404569
NSF
AST-1333520
NSF
TG-PHY160025
NSF
ACI-1440083

Dates

Created
2017-06-16
Created from EPrint's datestamp field
Updated
2021-11-15
Created from EPrint's last_modified field

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