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Synchronized Aharonov-Bohm Motifs via Engineered Dissipation

arXiv
Authors: Christopher W. Wächtler, Gloria Platero

Year

2025

Paper ID

16734

Status

Preprint

Abstract Read

~2 min

Abstract Words

104

Citations

0

Abstract

The interplay between external gauge fields and lattice geometry can induce extreme localization dynamics through complete destructive interference. We show that combining this flux-induced localization with engineered dissipation leads to robust spin synchronization in rotationally symmetric spin geometries, referred to as Aharonov-Bohm motifs, with cyclic symmetries of any order. The synchronized dynamics is independent of initial conditions and features entanglement among spins within each motif. We further demonstrate that multiple motifs can fully synchronize when coupled, which is achieved by applying additional collective dissipation acting on all intra-motif spins. These results reveal a direct connection between flux-induced localization, dissipative engineering, and collective quantum synchronization.

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  • It adds a 2025 reference point for readers tracking recent quantum research.
  • The interplay between external gauge fields and lattice geometry can induce extreme localization dynamics through complete destructive interference.

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