Projected Constraints on Primordial Black Holes from Scalar-Induced Gravitational Waves with Taiji
Yang Jiang, Chen Yuan, Qing-Guo Huang
Abstract
Scalar-induced gravitational waves (SIGWs) provide a direct probe of the enhanced primordial curvature perturbations that may also produce primordial black holes (PBHs). We forecast the capability of the space-based gravitational-wave observatory Taiji to search for an SIGW background generated by a broken-power-law curvature spectrum. A signal-injection study is used to validate the analysis pipeline, after which a pure-noise realization is employed to derive projected upper limits on the curvature-spectrum parameters. We translate these limits into constraints on the PBH abundance using the nonlinear compaction function, critical collapse, and the joint Gaussian distribution of the compaction amplitude and curvature at its peak. The resulting projected 95\% upper limits on the PBH dark-matter fraction satisfy fPBH95\%<1 over PBH masses from approximately 6.2×10-18\,M to 1.7×10-8\,M. We compare the forecast with representative Hawking-evaporation and microlensing bounds. In part of the asteroid-mass interval, the projected Taiji limit is more restrictive than the current Subaru Hyper Suprime-Cam (HSC) microlensing constraint.
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