Mock Catalogs of Strongly Lensed Gravitational Waves via A Halo Model Approach with Ground-based Detectors
arXiv:2603.09289 · doi:10.3847/1538-4365/ae6117
Abstract
As plans for the construction of third-generation gravitational wave (GW) detectors advance, research into strongly lensed GWs has become increasingly critical. It is anticipated that hundreds of multi-image lensed GWs will be detected annually. We present a comprehensive suite of lensed GW mock catalog derived from a composite lens mass model incorporating dark matter halos, galaxies, and subhalos. We analyze three source populations with four detector network configurations considering the earth rotation. Our simulations encompass not only conventional doublets and quadruplets but also subhalo-lensed events, highly magnified systems, and complete three or five image systems with a detectable central image, a feature distinct from optical lensing. For the joint ET+CE network, we forecast an annual detection rate of approximately 400 doublets and 36 quadruplets. Notably, this population includes roughly 107 events lensed by subhalos and 20 complete systems with detectable central images. Furthermore, we analyze high-magnification events (), predicting approximately 360 such cases. Under a more relaxed selection criterion that requires only at least one lensed signal to exceed the detection threshold, we estimate a total of approximately 617 lensed events. We also investigate the impact of variations in lens mass models and stellar evolution models on event rates, as well as the distributions of SNR pairs and time delays. These results establish a more physically grounded statistical prior for the future identification and authentication of lensed GW signals. The Gravitational Waves-Lensing Mock Catalog (GW-LMC) have been made publicly available.
25 pages, 12 figures, 5 tables
References in corpus (30)
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- Advanced LIGO
- Exploring the Sensitivity of Next Generation Gravitational Wave Detectors
- A universal model for halo concentrations
- Phase effects from strong gravitational lensing of gravitational waves
- Strong gravitational lensing of gravitational waves from double compact binaries - perspectives for the Einstein Telescope
- Please repeat: Strong lensing of gravitational waves as a probe of compact binary and galaxy populations
- Identifying strong gravitational-wave lensing during the second observing run of Advanced LIGO and Advanced Virgo
- Gravitational wave lensing beyond general relativity: birefringence, echoes and shadows
- Probing Dark Low-mass Halos and Primordial Black Holes with Frequency-dependent Gravitational Lensing Dispersions of Gravitational Waves
- The halo model for cosmology: a pedagogical review
- Gravitational wave lensing as a probe of halo properties and dark matter
- A fast and precise methodology to search for and analyse strongly lensed gravitational-wave events
- Strongly Lensed Transient Sources: A Review
- Bayesian statistical framework for identifying strongly lensed gravitational-wave signals
- Breaking the mass-sheet degeneracy with gravitational wave interference in lensed events
- On the identification of individual gravitational wave image types of a lensed system using higher-order modes
- Shapes and alignments of dark matter haloes and their brightest cluster galaxies in 39 strong lensing clusters
- Lensing or luck? False alarm probabilities for gravitational lensing of gravitational waves
- Population properties and multimessenger prospects of neutron star-black hole mergers following GWTC-3
- Improved statistic to identify strongly lensed gravitational wave events
- Direct measurement of the distribution of dark matter with strongly lensed gravitational waves
- Measuring the viscosity of dark matter with strongly lensed gravitational waves
- The Return of GOLUM: Improving Distributed Joint Parameter Estimation for Strongly-Lensed Gravitational Waves
- SLICK: Strong Lensing Identification of Candidates Kindred in gravitational wave data
- A halo model approach for mock catalogs of time-variable strong gravitational lenses
- An interference-based method for the detection of strongly lensed gravitational waves
- The impact of waveform systematics and Gaussian noise on the interpretation of GW231123
- Identification of Strongly Lensed Gravitational Wave Events Using Squeeze-and-Excitation Multilayer Perceptron Data-efficient Image Transformer
- Improved Identification of Strongly Lensed Gravitational Waves with Host Galaxy Locations