Self-force on a static scalar test charge outside a Schwarzschild black hole

Alan G. Wiseman
Phys. Rev. D 61, 084014 – Published 24 March 2000
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Abstract

The finite part of the self-force on a static scalar test charge outside a Schwarzschild black hole is zero. By direct construction of Hadamard’s elementary solution, we obtain a closed-form expression for the minimally coupled scalar field produced by a test-charge held fixed in Schwarzschild spacetime. Using the closed-form expression, we compute the necessary external force required to hold the charge stationary. Although the energy associated with the scalar field contributes to the renormalized mass of the particle (and thereby its weight), we find there is no additional self-force acting on the charge. This result is unlike the analogous electrostatic result, where, after a similar mass renormalization, there remains a finite repulsive self-force acting on a static electric test-charge outside a Schwarzschild black hole. We confirm our force calculation using Carter’s mass-variation theorem for black holes. The primary motivation for this calculation is to develop techniques and formalism for computing all forces—dissipative and non-dissipative—acting on charges and masses moving in a black-hole spacetime. In the Appendix we recap the derivation of the closed-form electrostatic potential. We also show how the closed-form expressions for the fields are related to the infinite series solutions.

  • Received 8 July 1998

DOI:https://doi.org/10.1103/PhysRevD.61.084014

©2000 American Physical Society

Authors & Affiliations

Alan G. Wiseman*

  • Enrico Fermi Institute, University of Chicago, 5640 Ellis Avenue, Chicago, Illinois 60637-1433

  • *Email address: agw@gravity.phys.uwm.edu

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Vol. 61, Iss. 8 — 15 April 2000

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