Black hole bulk-cone singularities
Matthew Dodelson, Cristoforo Iossa, Robin Karlsson, Alexandru, Lupsasca, and Alexander Zhiboedov

TL;DR
This paper investigates the universal bulk-cone singularities in holographic correlators related to black hole photon spheres, revealing their connection to classical chaos and potential experimental signatures.
Contribution
It analytically derives the form of bulk-cone singularities associated with black hole photon spheres using WKB methods and numerically supports these findings.
Findings
Bulk-cone singularities are linked to photon sphere geodesics.
The singularity strength is governed by Lyapunov exponents.
Numerical and analytical results agree on the singularity structure.
Abstract
Lorentzian correlators of local operators exhibit surprising singularities in theories with gravity duals. These are associated with null geodesics in an emergent bulk geometry. We analyze singularities of the thermal response function dual to propagation of waves on the AdS Schwarzschild black hole background. We derive the analytic form of the leading singularity dual to a bulk geodesic that winds around the black hole. Remarkably, it exhibits a boundary group velocity larger than the speed of light, whose dual is the angular velocity of null geodesics at the photon sphere. The strength of this singularity is controlled by the classical Lyapunov exponent associated with the instability of nearly bound photon orbits. In this sense, the bulk-cone singularity can be identified as the universal feature that encodes the ubiquitous black hole photon sphere in a dual holographic CFT. To…
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Taxonomy
TopicsAstrophysical Phenomena and Observations · Black Holes and Theoretical Physics · Pulsars and Gravitational Waves Research
