Hopf-induced desynchronization

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

Abstract

The emergence of synchrony essentially underlies the functionality of many systems across physics, biology and engineering. In all established synchronization phase transitions so far, a stable synchronous state is connected to a stable incoherent state: For continuous transitions, stable synchrony directly connects to stable incoherence at a critical point, whereas for discontinuous transitions, stable synchrony is connected to stable incoherence via an additional unstable branch. Here we present a novel type of transition between synchrony and incoherence where the synchronous state does not connect to the state of incoherence. We uncover such transitions in the complexified Kuramoto model with their variables and coupling strength parameter analytically continued. Deriving a self-consistency equation for a quaternion order parameter that we propose helps to mathematically pin down the mechanisms underlying this transition type. Local numerical analysis suggests that the transition is linked to a Hopf bifurcation destabilizing synchrony, in contrast to branching point bifurcations established for the transition between synchrony and incoherence so far.

Details

Original languageEnglish
Pages (from-to)1107-1118
Number of pages12
JournalZeitschrift fur Naturforschung - Section A Journal of Physical Sciences
Volume80
Issue number11
Early online date9 Jul 2025
Publication statusPublished - 25 Nov 2025
Peer-reviewedYes

External IDs

ORCID /0000-0002-5956-3137/work/190571797

Keywords

Keywords

  • explosive phenomenas, phase transitions, synchronization