Tuning Advanced LIGO to kilohertz signals from neutron-star collisions
arXiv:2010.15735 · doi:10.1103/PhysRevD.103.022002
Abstract
Gravitational waves produced at kilohertz frequencies in the aftermath of a neutron star collision can shed light on the behavior of matter at extreme temperatures and densities that are inaccessible to laboratory experiments. Gravitational-wave interferometers are limited by quantum noise at these frequencies but can be tuned via their optical configuration to maximize the probability of post-merger signal detection. We compare two such tuning strategies to turn Advanced LIGO into a post-merger-focused instrument: first, a wideband tuning that enhances the instrument's signal-to-noise ratio 40--80\% broadly above \SI{1}{\kHz} relative to the baseline, with a modest sensitivity penalty at lower frequencies; second, a "detuned" configuration that provides even more enhancement than the wideband tuning, but over only a narrow frequency band and at the expense of substantially worse quantum noise performance elsewhere. With an optimistic accounting for instrument loss and uncertainty in post-merger parameters, the detuned instrument has a sensitivity improvement compared to the wideband instrument.
References in corpus (8)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Multi-messenger Observations of a Binary Neutron Star Merger
- Sensitivity and Performance of the Advanced LIGO Detectors in the Third Observing Run
- Tidal effects in binary neutron star coalescence
- Prospects for doubling the range of Advanced LIGO
- Inferring the post-merger gravitational wave emission from binary neutron star coalescences
- Exploring the sensitivity of gravitational wave detectors to neutron star physics
- Measurement of Optical Response of a Detuned Resonant Sideband Extraction Interferometer
Cited by in corpus (15)
- Uncertainty limits on neutron star radius measurements with gravitational waves
- LIGOs Quantum Response to Squeezed States
- Astrophysical constraints on compact objects in 4D Einstein-Gauss-Bonnet gravity
- Measurement of the high-energy all-flavor neutrino-nucleon cross section with IceCube
- Frequency deviations in universal relations of isolated neutron stars and postmerger remnants
- Analytic models of the spectral properties of gravitational waves from neutron star merger remnants
- A Gravitational Wave Detector for Post Merger Neutron Stars: Beyond the Quantum Loss Limit of Michelson Fabry Perot Interferometer
- Models of binary neutron star remnants with tabulated equations of state
- Nonlinear dynamics of oscillating neutron stars in scalar-tensor gravity
- Achieving the fundamental quantum limit of linear waveform estimation
- Nondegenerate internal squeezing: an all-optical, loss-resistant quantum technique for gravitational-wave detection
- Evidence for the transition of a Jacobi ellipsoid into a Maclaurin spheroid in gamma-ray bursts
- Gravitational-wave model for neutron star merger remnants with supervised learning
- Enhancing high frequency sensitivity of gravitational wave detectors with sloshing-Sagnac interferometer
- Performance of multiple filter-cavity schemes for frequency-dependent squeezing in gravitational-wave detectors