Gravitational Lensing by Self-Dual Black Holes in Loop Quantum Gravity
Satyabrata Sahu, Kinjalk Lochan, D. Narasimha

TL;DR
This paper investigates gravitational lensing effects caused by a novel black hole solution in Loop Quantum Gravity, highlighting unique quantum corrections that could be tested through future astrophysical observations.
Contribution
It introduces a new quantum gravity-inspired black hole model with dimensionless parameters that evade typical mass suppression effects, offering a potential observational test via lensing.
Findings
Quantum corrections evade mass suppression effects.
A consistency relation for the model is proposed.
Time delay measurements could test the model in future observations.
Abstract
We study gravitational lensing by a recently proposed black hole solution in Loop Quantum Gravity. We highlight the fact that the quantum gravity corrections to the Schwarzschild metric in this model evade the `mass suppression' effects (that the usual quantum gravity corrections are susceptible to) by virtue of one of the parameters in the model being dimensionless, which is unlike any other quantum gravity motivated parameter. Gravitational lensing in the strong and weak deflection regimes is studied and a sample consistency relation is presented which could serve as a test of this model. We discuss that though the consistency relation for this model is qualitatively similar to what would have been in Brans-Dicke, in general it can be a good discriminator between many alternative theories. Although the observational prospects do not seem to be very optimistic even for a galactic…
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