In the cold dark matter paradigm, ultralight particles are emerging as strong contenders to conventional massive particles. A unique prediction of dark matter comprising such ultralight particles, known as fuzzy dark matter (FDM), is the presence of strong density modulations throughout galactic halos due to wave interference, which—when approximated by a Gaussian random field (GRF)—have been proposed to account for the inability to reproduce the observed positions (when measured at sufficient precisions) and flux ratios of multiply-lensed images of quasars. Here, we predict for the first time the properties of gravitationally lensed images generated from three-dimensional density fields obtained by wave simulations that directly evolve the Schrödinger–Poisson equations. Using a novel framework to project these evolved density fields along various axes of the three-dimensional halo, we obtain the distribution of perturbations to the positions of lensed images. As an exacting test, we find that particles of mass 10−22 eV can reproduce the positions of the quadruply lensed radio jets in system HS 0810+2554 to a level better than that of either the GRF approximation or, to a greater extent, a Navarro–Frenk–White best-fit solution, both of which rely on accurately capturing the global three-dimensional density field of dark matter halos. Our work highlights the importance of wave simulations for making accurate FDM lensing predictions and the potential for high-resolution observations of lensed systems to serve as a direct probe of the nature of dark matter.
Many dark sector models predict the formation of dark objects, such as solitons and dark stars, which can be searched for through their gravitational lensing of gravitational waves (GWs). Although these objects vary widely in size and compactness, most GW lensing studies have focused on point-like lenses. The finite si...
Wave cold dark matter (wave CDM) is a well-motivated variant within the collisionless CDM paradigm, in which the de~Broglie wavelengths of ultralight bosons become relevant on galactic scales. While many of the previous tests of wave CDM have focused on small-scale tensions involving solitonic cores and certain solit...
Run-Yu Meng, Xiao-Bo Dong· Research in Astronomy and As...· 0 citations
We use a variety of analytic and numerical techniques to approximate the geometry of individual dark matter halos when modeled as collections of ultralight scalar bosons (ULDM), followed by an analysis on the future directions and implications of this work. Ultimately, we aim to understand the morphology and creation o...
The distribution of dark matter in the immediate vicinity of supermassive black holes remains poorly understood despite its importance for galaxy evolution and precision tests of gravity. Future space-based gravitational-wave observatories offer a unique opportunity to probe this relativistic regime through the inspira...
Jared Fier, Farah Abdelshahed, Lilly Kowalczyk et al.· 1 citation· ⚡1
The density profiles of Dark matter (DM) halos carry imprints of the DM nature and may be constrained through the lensing effects on gravitational waves (GWs) arising from the halo gravitational potential. In this paper, we investigate GW lensing by two representative types of halo density profiles, i.e., the generaliz...
Hanyu Jiang, Xiao Guo, You-Jun Lu et al.· 0 citations
Gravitational-wave~(GW) transients, strongly lensed by intervening galaxies and clusters, are expected to constitute a small fraction ($\sim 0.1$-$0.5\%$) of the events detectable by ground-based detectors. A strongly lensed binary black hole (BBH) merger will produce multiple copies of the GW signal arriving at differ...
Koustav N. Maity, Souvik Jana, A. Barsode et al.· 0 citations
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