Synthesized Kuramoto potential via optomechanical Floquet engineering
Fuente:
arXiv
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| Autori principali: | , , |
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| Natura: | Preprint |
| Pubblicazione: |
2025
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| _version_ | 1866910854358761472 |
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| author | Asano, Motoki Okamoto, Hajime Yamaguchi, Hiroshi |
| author_facet | Asano, Motoki Okamoto, Hajime Yamaguchi, Hiroshi |
| contents | Synchronization is a ubiquitous scientific phenomenon in various physical systems. Here, we examine the feasibility of generating multistable and dynamically tunable synchronization by using the technique of Floquet engineering. Applying a periodically modulated laser light to optomechanical oscillators allows for stable and precise control of oscillator couplings. This enables us not only to explore the physics of quantized integer and fractional phase slips but also synthesize multioctave synchronizations of mechanical oscillators that exhibit tailorable multistability. Furthermore, the dynamically manipulated synchronizations lead to an exotic topology wherein the phase trajectories have a nontrivial winding number and giant non-reciprocity. This scheme could help to elucidate the dynamics of complicated oscillator networks like biological systems and to mimic their highly efficient information processing. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2503_01091 |
| institution | arXiv |
| publishDate | 2025 |
| record_format | arxiv |
| spellingShingle | Synthesized Kuramoto potential via optomechanical Floquet engineering Asano, Motoki Okamoto, Hajime Yamaguchi, Hiroshi Mesoscale and Nanoscale Physics Optics Synchronization is a ubiquitous scientific phenomenon in various physical systems. Here, we examine the feasibility of generating multistable and dynamically tunable synchronization by using the technique of Floquet engineering. Applying a periodically modulated laser light to optomechanical oscillators allows for stable and precise control of oscillator couplings. This enables us not only to explore the physics of quantized integer and fractional phase slips but also synthesize multioctave synchronizations of mechanical oscillators that exhibit tailorable multistability. Furthermore, the dynamically manipulated synchronizations lead to an exotic topology wherein the phase trajectories have a nontrivial winding number and giant non-reciprocity. This scheme could help to elucidate the dynamics of complicated oscillator networks like biological systems and to mimic their highly efficient information processing. |
| title | Synthesized Kuramoto potential via optomechanical Floquet engineering |
| topic | Mesoscale and Nanoscale Physics Optics |
| url | https://arxiv.org/abs/2503.01091 |