TY - JOUR
T1 - Detectability of QCD phase transitions in binary neutron star mergers
T2 - Bayesian inference with the next generation gravitational wave detectors
AU - Prakash, Aviral
AU - Gupta, Ish
AU - Breschi, Matteo
AU - Kashyap, Rahul
AU - Radice, David
AU - Bernuzzi, Sebastiano
AU - Logoteta, Domenico
AU - Sathyaprakash, B. S.
N1 - Publisher Copyright:
© 2024 American Physical Society.
PY - 2024/5/15
Y1 - 2024/5/15
N2 - We study the detectability of postmerger QCD phase transitions in neutron star binaries with next-generation gravitational-wave detectors Cosmic Explorer and Einstein Telescope. We perform numerical relativity simulations of neutron star mergers with equations of state that include a quark deconfinement phase transition through either a Gibbs or Maxwell construction. These are followed by Bayesian parameter estimation of the associated gravitational-wave signals using the nrpmw waveform model, with priors inferred from the analysis of the inspiral signal. We assess the ability of the model to measure the postmerger peak frequency f2peak and identify aspects that should be improved in the model. We show that, even at postmerger signal to noise ratios as low as 10, the model can distinguish (at the 90% level) f2peak between binaries with and without a phase transition in most cases. Phase-transition induced deviations in the f2peak from the predictions of equation-of-state insensitive relations can also be detected if they exceed 1.6σ. Our results suggest that next-generation gravitational wave detectors can measure phase transition effects in binary neutron star mergers. However, unless the phase transition is "strong,"disentangling it from other hadronic physics uncertainties will require significant theory improvements.
AB - We study the detectability of postmerger QCD phase transitions in neutron star binaries with next-generation gravitational-wave detectors Cosmic Explorer and Einstein Telescope. We perform numerical relativity simulations of neutron star mergers with equations of state that include a quark deconfinement phase transition through either a Gibbs or Maxwell construction. These are followed by Bayesian parameter estimation of the associated gravitational-wave signals using the nrpmw waveform model, with priors inferred from the analysis of the inspiral signal. We assess the ability of the model to measure the postmerger peak frequency f2peak and identify aspects that should be improved in the model. We show that, even at postmerger signal to noise ratios as low as 10, the model can distinguish (at the 90% level) f2peak between binaries with and without a phase transition in most cases. Phase-transition induced deviations in the f2peak from the predictions of equation-of-state insensitive relations can also be detected if they exceed 1.6σ. Our results suggest that next-generation gravitational wave detectors can measure phase transition effects in binary neutron star mergers. However, unless the phase transition is "strong,"disentangling it from other hadronic physics uncertainties will require significant theory improvements.
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U2 - 10.1103/PhysRevD.109.103008
DO - 10.1103/PhysRevD.109.103008
M3 - Article
AN - SCOPUS:85192289888
SN - 2470-0010
VL - 109
JO - Physical Review D
JF - Physical Review D
IS - 10
M1 - 103008
ER -