| Literature DB >> 27203312 |
Tanja Hinderer1,2, Andrea Taracchini2, Francois Foucart3, Alessandra Buonanno2, Jan Steinhoff2,4, Matthew Duez5, Lawrence E Kidder6, Harald P Pfeiffer7, Mark A Scheel8, Bela Szilagyi8,9, Kenta Hotokezaka10, Koutarou Kyutoku11, Masaru Shibata12, Cory W Carpenter5.
Abstract
Extracting the unique information on ultradense nuclear matter from the gravitational waves emitted by merging neutron-star binaries requires robust theoretical models of the signal. We develop a novel effective-one-body waveform model that includes, for the first time, dynamic (instead of only adiabatic) tides of the neutron star as well as the merger signal for neutron-star-black-hole binaries. We demonstrate the importance of the dynamic tides by comparing our model against new numerical-relativity simulations of nonspinning neutron-star-black-hole binaries spanning more than 24 gravitational-wave cycles, and to other existing numerical simulations for double neutron-star systems. Furthermore, we derive an effective description that makes explicit the dependence of matter effects on two key parameters: tidal deformability and fundamental oscillation frequency.Year: 2016 PMID: 27203312 DOI: 10.1103/PhysRevLett.116.181101
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161