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arXiv · 2609.18143

Horizon--orbit scale competition underlying chaos bound violation for spinning particles

Abstract

In this paper, we investigate the chaos bound through the local radial instability of charged spinning test particles on unstable circular orbits in the black-bounce--Kerr--Newman spacetime. Our results show that violation of the bound is governed by the competition between the local orbital-instability scale and the surface gravity scale, with variations of the black hole background and the particle dynamics providing two complementary routes to the same threshold crossing. Background variations affect both scales and can drive the system into the bound-violating regime when the surface gravity is suppressed more strongly than the orbital instability. At fixed background, by contrast, the surface gravity remains unchanged, and the transition across the threshold is driven by changes in the unstable orbit dynamics induced by the particle parameters. The background-controlled and probe-dynamics-controlled routes therefore represent two realizations of a unified horizon--orbit scale competition rather than independent mechanisms.

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Deyou Chen, Lifang Li, Chuang Yang, Kangqiao Liu. 2026-09-20. Horizon--orbit scale competition underlying chaos bound violation for spinning particles. https://arxiv.org/abs/2609.18143

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