Can light-rings self-gravitate?
arXiv:2407.13832 · doi:10.1103/PhysRevD.111.L021504
Abstract
In a spherically symmetric and static spacetime of a compact object, such as that of a Schwarzschild black hole, the light-ring is a 2-sphere where photons experience the only possible circular orbits. As a "Gedankenexperiment", we imagine an advanced civilisation able to populate the light-ring of a nonrotating black hole of mass with photons having a fine-tuned impact parameter that allows their orbits to be exactly circular with radius . As the number of photons in the light-ring increases in time, its mass will no longer be negligible and hence it will impact on the background spacetime, that is, it will "self-gravitate". We here consider two different routes to assign a nonzero mass to the light-ring that are either based on a discrete concentration of photons on a specific radial location or on a suitable distribution of photons in a given region. In both cases, and using the Einstein equations, we find that the inclusion of the energy from the accumulated photons leads to the generation of new light-rings. Such new light-rings can either appear at well-defined but discrete locations, or be fused in a well-defined region. In either case, we show that such light-ring configurations are dynamically unstable and a small perturbation, either via the inclusion of an additional photon onto the light-ring or via the absorption of a photon by the black hole, leads to a catastrophic destruction of the light-ring structures.
Some refinements to improve clarity and simplify the analysis; Matches the published version; Conclusions unchanged
References in corpus (11)
- First M87 Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole
- First Sagittarius A* Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole in the Center of the Milky Way
- First Sagittarius A* Event Horizon Telescope Results. VI: Testing the Black Hole Metric
- Light ring stability in ultra-compact objects
- Constraints on black-hole charges with the 2017 EHT observations of M87*
- How to tell a gravastar from a black hole
- Chaotic lensing around boson stars and Kerr black holes with scalar hair
- Post-Kerr black hole spectroscopy
- Black hole merger estimates in Einstein-Maxwell and Einstein-Maxwell-dilaton gravity
- Distinguishing gravitational and emission physics in black-hole imaging: spherical symmetry
- General-relativistic thin-shell Dyson mega-spheres
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