Geodesic synchrotron radiation in the Kerr geometry by the method of asymptotically factorized Green's functions

P. L. Chrzanowski and C. W. Misner
Phys. Rev. D 10, 1701 – Published 15 September 1974
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Abstract

The scalar, electromagnetic, and gravitational geodesic synchrotron radiation (GSR) spectra are determined for the case of a test particle moving on a highly relativistic circular orbit about a rotating (Kerr) black hole. One finds that the spectral shape depends only weakly on the angular momentum parameter aM of the black hole, but the total radiated power drops unexpectedly for aM0.95 and vanishes for aM1. A spin-dependent factor (involving the inner product of the polarization of a radiated quantum with the source) is isolated to explain the dependence of the spectral shape upon the spin of the radiated field. Although the scalar wave equation is solved by separation of variables, this procedure is avoided for the vector and tensor cases by postulating there a sum-over-states expansion for the Green's function similar to that found to hold in the scalar case. The terms in this sum, significant for GSR, can then be evaluated in the geometric optics approximation without requiring the use of vector or tensor spherical harmonics.

  • Received 25 February 1974

DOI:https://doi.org/10.1103/PhysRevD.10.1701

©1974 American Physical Society

Authors & Affiliations

P. L. Chrzanowski and C. W. Misner*

  • Center for Theoretical Physics, Department of Physics and Astronomy, University of Maryland, College Park, Maryland 20742

  • *Guggenheim Fellow 1972-73. The hospitality of the Department of Astrophysics, University Observatory, Oxford, England is gratefully acknowledged for the period when Sec. III of this paper was developed.

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Vol. 10, Iss. 6 — 15 September 1974

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