Chiral anomalies in black hole spacetimes
Valeri P. Frolov, Alex Koek, Jose Pinedo Soto, Andrei Zelnikov

TL;DR
This paper investigates chiral anomalies in black hole spacetimes with principal Killing-Yano tensors, revealing special solutions for anomaly currents, their symmetry properties, and implications for Hawking radiation polarization.
Contribution
It provides explicit solutions for chiral anomaly currents in charged rotating black hole spacetimes, highlighting their symmetry properties and relation to Hawking radiation.
Findings
Chiral anomaly currents propagate along principal null directions.
Solutions respect both explicit and hidden symmetries of spacetime.
Chirality fluxes relate to polarization asymmetry in Hawking radiation.
Abstract
We study the properties of chiral anomalies in a wide class of spacetimes which possess a principal Killing-Yano tensor. This class includes metrics of charged rotating black holes as a special physically important case. The spacetimes which admit a principal Killing-Yano tensor possess a number of remarkable properties. In particular, such spacetimes have two commuting Killing vectors and a Killing tensor responsible for their hidden symmetries. We calculate the gravitational and electromagnetic contributions to the axial anomaly currents in the spacetime of a charged rotating black hole, and demonstrate that the equation for the chiral anomaly current has special solutions which respect both explicit and hidden symmetries. Two of these solutions have the form of currents propagating along two principal null directions, which are null eigenvectors of the Riemann tensor. These solutions…
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Taxonomy
TopicsAstrophysical Phenomena and Observations · Black Holes and Theoretical Physics · Pulsars and Gravitational Waves Research
