arXiv · 1502.01336
Renormalized vacuum polarization of rotating black holes
Abstract
Quantum field theory on rotating black hole spacetimes is plagued with technical difficulties. Here, we describe a general method to renormalize and compute the vacuum polarization of a quantum field in the Hartle-Hawking state on rotating black holes. We exemplify the technique with a massive scalar field on the warped AdS3 black hole solution to topologically massive gravity, a deformation of (2+1)-dimensional Einstein gravity. We use a "quasi-Euclidean" technique, which generalizes the Euclidean techniques used for static spacetimes, and we subtract the divergences by matching to a sum over mode solutions on Minkowski spacetime. This allows us, for the first time, to have a general method to compute the renormalized vacuum polarization (and, more importantly, the renormalized stress-energy tensor), for a given quantum state, on a rotating black hole, such as the physically relevant case of the Kerr black hole in four dimensions.
Explore related subjects
Keep this discovery
Hugo R. C. Ferreira. 2015-05-05. Renormalized vacuum polarization of rotating black holes. https://doi.org/10.1142/s0218271815420079
Cite the original work for its findings. Save a collection to share your selection of sources.