Emergent ac Effect in Nonreciprocal Coupled Condensates

Fuente: arXiv
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Main Authors: Zou, Ji, Kozin, Valerii K., Loss, Daniel, Klinovaja, Jelena
Format: Preprint
Published: 2025
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author Zou, Ji
Kozin, Valerii K.
Loss, Daniel
Klinovaja, Jelena
author_facet Zou, Ji
Kozin, Valerii K.
Loss, Daniel
Klinovaja, Jelena
contents We report an emergent ac Josephson-like effect arising without external bias, driven by the interplay between nonreciprocity and nonlinearity in coupled condensates. Using a minimal model of three mutually nonreciprocally coupled condensates, we uncover a rich landscape of dynamical phases governed by generalized Josephson equations. This goes beyond the Kuramoto framework owing to inherent nonreciprocity and dynamically evolving effective couplings, leading to static and dynamical ferromagnetic and (anti)vortex states with nontrivial phase winding. Most strikingly, we identify an ac phase characterized by the emergence of two distinct frequencies, which spontaneously break the time-translation symmetry: one associated with the precession of the global U(1) Goldstone mode and the other with a stabilized limit cycle in a five-dimensional phase space. This phase features bias-free autonomous oscillatory currents beyond conventional Josephson dynamics. We further examine how instabilities develop in the ferromagnetic and vortex states, and how they drive transitions into the ac regime. Interestingly, the transition is hysteretic: phases with different winding numbers destabilize under distinct conditions, reflecting their inherently different nonlinear structures. Our work lays the foundation for exploring nonreciprocity-driven novel dynamical phases in a broad class of condensate platforms.
format Preprint
id arxiv_https___arxiv_org_abs_2512_23595
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Emergent ac Effect in Nonreciprocal Coupled Condensates
Zou, Ji
Kozin, Valerii K.
Loss, Daniel
Klinovaja, Jelena
Mesoscale and Nanoscale Physics
We report an emergent ac Josephson-like effect arising without external bias, driven by the interplay between nonreciprocity and nonlinearity in coupled condensates. Using a minimal model of three mutually nonreciprocally coupled condensates, we uncover a rich landscape of dynamical phases governed by generalized Josephson equations. This goes beyond the Kuramoto framework owing to inherent nonreciprocity and dynamically evolving effective couplings, leading to static and dynamical ferromagnetic and (anti)vortex states with nontrivial phase winding. Most strikingly, we identify an ac phase characterized by the emergence of two distinct frequencies, which spontaneously break the time-translation symmetry: one associated with the precession of the global U(1) Goldstone mode and the other with a stabilized limit cycle in a five-dimensional phase space. This phase features bias-free autonomous oscillatory currents beyond conventional Josephson dynamics. We further examine how instabilities develop in the ferromagnetic and vortex states, and how they drive transitions into the ac regime. Interestingly, the transition is hysteretic: phases with different winding numbers destabilize under distinct conditions, reflecting their inherently different nonlinear structures. Our work lays the foundation for exploring nonreciprocity-driven novel dynamical phases in a broad class of condensate platforms.
title Emergent ac Effect in Nonreciprocal Coupled Condensates
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2512.23595