Scalar induced gravitational waves from primordial black hole Poisson fluctuations in $f(R)$ gravity
Theodoros Papanikolaou, Charalampos Tzerefos, Spyros Basilakos,, Emmanuel N. Saridakis

TL;DR
This paper investigates how scalar-induced gravitational waves from primordial black hole fluctuations in $f(R)$ gravity can constrain black hole abundance and gravity models, providing tighter bounds than general relativity and proposing a new observational probe.
Contribution
It introduces bounds on primordial black hole abundance and $f(R)$ gravity parameters based on scalar-induced gravitational waves, highlighting their potential as a novel probe of alternative gravity theories.
Findings
Upper bound on PBH abundance tighter than in GR
Constraints on $f(R)$ gravity $R^2$ model parameters
SIGWs as a complementary probe for gravity theories
Abstract
The gravitational potential of a gas of initially randomly distributed primordial black holes (PBH) can induce a stochastic gravitational-wave (GW) background through second-order gravitational effects. This GW background can be abundantly generated in a cosmic era dominated by ultralight primordial black holes, with masses . In this work, we consider gravity as the underlying gravitational theory and we study its effect at the level of the gravitational potential of Poisson distributed primordial black holes. After a general analysis, we focus on the gravity model. In particular, by requiring that the scalar induced GWs (SIGWs) are not overproduced, we find an upper bound on the abundance of PBHs at formation time as a function of their mass, namely that $\Omega_\mathrm{PBH,f}<5.5\times…
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Taxonomy
TopicsCosmology and Gravitation Theories · Geophysics and Gravity Measurements · Black Holes and Theoretical Physics
