
TL;DR
This paper analytically investigates massive scalar fields around rapidly-rotating Kerr black holes, deriving a simple formula for bound-state resonances and showing that scalar cloud sizes approach finite values in the large mass limit.
Contribution
It provides an analytical derivation of the resonance mass spectrum and length scales of scalar clouds in the large-mass regime around Kerr black holes, extending understanding of black hole-field interactions.
Findings
Derived a simple analytical formula for scalar cloud resonances.
Showed scalar cloud lengths approach finite values at large mass.
Established the scaling of characteristic length with black-hole temperature.
Abstract
The interplay between black holes and fundamental fields has attracted much attention over the years from both physicists and mathematicians. In this paper we study {\it analytically} a physical system which is composed of massive scalar fields linearly coupled to a rapidly-rotating Kerr black hole. Using simple arguments, we first show that the coupled black-hole-scalar-field system may possess stationary bound-state resonances (stationary scalar `clouds') in the bounded regime , where and are respectively the mass and azimuthal harmonic index of the field, and is the angular velocity of the black-hole horizon. We then show explicitly that these two bounds on the dimensionless ratio can be saturated in the asymptotic limit. In particular, we derive a remarkably simple analytical…
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