Comparing spin supplementary conditions for particle motion around traversable wormholes
Carlos A. Benavides-Gallego, Jose Miguel Ladino, Eduard Larra\~naga

TL;DR
This paper compares different spin supplementary conditions (SSCs) for spinning particles orbiting traversable wormholes, analyzing their effects on orbital frequency and stability, revealing differences at second order in spin and improvements in convergence.
Contribution
It provides a detailed comparison of SSCs in wormhole spacetimes, highlighting their impact on orbital dynamics and stability, especially regarding ISCO behavior.
Findings
Differences among SSCs appear at second order in spin expansion.
Radial corrections enhance convergence between Tulzcyjew-Dixon and Mathisson-Pirani.
Ohashi-Kyrian-Semerák SSC extends ISCO existence at higher spins.
Abstract
The Mathisson-Papapetrou-Dixon (MPD) equations describe the motion of spinning test particles. It is well-known that these equations, which couple the Riemann curvature tensor with the antisymmetric spin tensor S, together with the normalization condition for the four-velocity, is a system of eleven equations relating fourteen unknowns. To ``close'' the system, it is necessary to introduce a constraint of the form V_\mu S^{\mu \nu} = 0, usually known as the spin supplementary condition (SSC), where V_\mu is a future-oriented reference vector satisfying the normalization condition V_\alpha V^\alpha = -1. There are several SSCs in the literature. In particular, the Tulzcyjew-Dixon, Mathisson-Pirani, and Ohashi-Kyrian-Semer\'ak are the most used by the community. From the physical point of view, choosing a different SSC (a different reference vector ) is equivalent to fixing the…
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Taxonomy
TopicsCosmology and Gravitation Theories · Astrophysics and Cosmic Phenomena · Astrophysics and Star Formation Studies
