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Formalism for testing theories of gravity using lensing by compact objects. III. Braneworld gravity

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PHYSICAL REVIEW D
卷 73, 期 10, 页码 -

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AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.73.104032

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Braneworld gravity is a model that endows physical space with an extra dimension. In the type II Randall-Sundrum braneworld gravity model, the extra dimension modifies the spacetime geometry around black holes, and changes predictions for the formation and survival of primordial black holes. We develop a comprehensive analytical formalism for far-field black hole lensing in this model, using invariant quantities to compute all the geometric optics lensing observables: bending angle, image position, magnification, centroid, and time delay. We then make the first analysis of wave optics in braneworld lensing, working in the semiclassical limit. Through quantitative examples we show that wave optics offers the only realistic way to observe braneworld effects in black hole lensing. We point out that if primordial braneworld black holes exist, have mass M-center dot, and contribute a fraction f(bh) of the dark matter, then roughly similar to 3x10(5)xf(bh)(M-center dot/10(-18)M)(-1) of them lie within our Solar System. These objects, which we call attolenses, would produce interference fringes in the energy spectra of gamma-ray bursts at energies E similar to 100(M-center dot/10(-18)M)(-1) MeV (which will soon be accessible with the GLAST satellite). Primordial braneworld black holes spread throughout the Universe could produce similar interference effects. If they contribute a fraction Omega(center dot) of the total energy density, the probability that gamma-ray bursts are attolensed is at least similar to 0.1 Omega(center dot). If observed, attolensing interference fringes would yield a simple upper limit on M-center dot. Detection of a primordial black hole with M-center dot less than or similar to 10(-19)M would challenge general relativity and favor the braneworld model. Further work on lensing tests of braneworld gravity must proceed into the physical optics regime, which awaits a description of the full spacetime geometry around braneworld black holes.

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