Gravitational self-force in non-vacuum spacetimes: an effective field theory derivation
Peter Zimmerman

TL;DR
This paper develops an effective field theory approach to calculate the gravitational self-force on small objects in non-vacuum spacetimes, extending previous vacuum formulations to include matter fields and their couplings.
Contribution
It introduces an effective action formalism for the self-force in non-vacuum spacetimes, enabling finite, explicit calculations of coupled gravitational and matter field effects.
Findings
Derived finite expressions for the local self-force using dimensional regularization.
Computed self-force for a scalar-charged particle in scalarvac spacetime.
Derived self-force for an electrically charged particle in electrovac spacetime.
Abstract
In this paper we investigate the motion of small compact objects in non-vacuum spacetimes using methods from effective field theory in curved spacetime. Although a vacuum formulation is sufficient in many astrophysical contexts, there are applications such as the role of the self-force in enforcing cosmic-censorship in the context of the overcharging problem, which necessitate an extension into the non-vacuum regime. The defining feature of the self-force problem in non-vacuum spacetimes is the coupling between gravitational and non-gravitational field perturbations. The formulation of the self-force problem for non-vacuum spacetimes was recently provided in simultaneous papers by Zimmerman and Poisson [1] and Linz, Friedmann, Wiseman [2]. Here we distinguish ourselves by working with the effective action rather than the field equations. The formalism utilizes the multi-index notation…
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