Nuclear reactions may affect gravitational-wave signals from neutron-star mergers, but the impact is uncertain. In order to quantify the effect, we compare two numerical simulations representing intuitive extremes. In one case reactions happen instantaneously. In the other case, they occur on timescales much slower than the evolutionary timescale. We show that, while the differences in the two gravitational-wave signals are small, they should be detectable by third-generation observatories.To avoid systematic errors in equation of state parameters inferred from observed signals, we need to accurately implement nuclear reactions in future simulations
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2001.Includes bibliographi...
Black hole-neutron star binary mergers display a much richer phenomenology than black hole-black hol...
A binary neutron star coalescence event has recently been observed for the first time in gravitation...
The signal of neutron star (NS) mergers has the imprint of the EOS of dense nuclear matter, which is...
International audienceGravitational waves from neutron-star mergers are expected to provide stringen...
We study the gravitational wave signals emitted from phase-transition induced collapses of rapidly r...
This work is focused on the determination of the gravitational-waves signal emitted by binary neutro...
Neutron-star mergers are closely related to nuclear physics. The nuclear equation of state determine...
We report the results of a first study that uses numerical simulations to estimate the accuracy with...
We present results from three-dimensional general relativistic simulations of binary neutron star co...
Tidal disruption has a dramatic impact on the outcome of neutron star–black hole mergers. The phenom...
We analyze the gravitational wave (GW) emission from our recently published set of relativistic neut...
In 2017, LIGO detected gravitational waves from GW170817. This presented for the first time, gravita...
International audienceGravitational waves from neutron-star mergers are expected to provide stringen...
Tidal effects due to the presence of matter in binary neutron star inspiral cause the gravitational ...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2001.Includes bibliographi...
Black hole-neutron star binary mergers display a much richer phenomenology than black hole-black hol...
A binary neutron star coalescence event has recently been observed for the first time in gravitation...
The signal of neutron star (NS) mergers has the imprint of the EOS of dense nuclear matter, which is...
International audienceGravitational waves from neutron-star mergers are expected to provide stringen...
We study the gravitational wave signals emitted from phase-transition induced collapses of rapidly r...
This work is focused on the determination of the gravitational-waves signal emitted by binary neutro...
Neutron-star mergers are closely related to nuclear physics. The nuclear equation of state determine...
We report the results of a first study that uses numerical simulations to estimate the accuracy with...
We present results from three-dimensional general relativistic simulations of binary neutron star co...
Tidal disruption has a dramatic impact on the outcome of neutron star–black hole mergers. The phenom...
We analyze the gravitational wave (GW) emission from our recently published set of relativistic neut...
In 2017, LIGO detected gravitational waves from GW170817. This presented for the first time, gravita...
International audienceGravitational waves from neutron-star mergers are expected to provide stringen...
Tidal effects due to the presence of matter in binary neutron star inspiral cause the gravitational ...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2001.Includes bibliographi...
Black hole-neutron star binary mergers display a much richer phenomenology than black hole-black hol...
A binary neutron star coalescence event has recently been observed for the first time in gravitation...