Self-forces in arbitrary dimensions
Abraham I. Harte, Peter Taylor, \'Eanna \'E. Flanagan

TL;DR
This paper generalizes the understanding of self-forces on bodies coupled to electromagnetic fields across all spacetime dimensions, revealing new effective field formulations and explicit self-force calculations in odd dimensions.
Contribution
It introduces a unified framework for self-force phenomena in arbitrary dimensions, including novel effective fields for odd dimensions and explicit point-particle self-force results.
Findings
Effective fields in even dimensions are source-free and similar to the Detweiler-Whiting field.
In odd dimensions, effective fields depend on a lengthscale parameter and are not necessarily source-free.
Particles in 3D spacetime tend to return to rest after perturbations.
Abstract
Bodies coupled to electromagnetic or other long-range fields are subject to radiation reaction and other effects in which their own fields can influence their motion. Self-force phenomena such as these have been poorly understood for spacetime dimensions not equal to four, despite the relevance of differing dimensionalities for holographic duals, effectively two-dimensional condensed matter and fluid systems, and so on. We remedy this by showing that forces and torques acting on extended electromagnetic charges in all dimensions have the same functional form as the usual test body expressions, except that the electromagnetic field appearing in those expressions is not the physical one; it is an effective surrogate. For arbitrary even , our surrogate field locally satisfies the source-free field equations, and is conceptually very similar to what arises in the…
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