Breaking the phase noise–mode purity trade-off in long-loop OEOs via cascaded zero-dispersion recirculating loops

Abstract Optoelectronic oscillators (OEOs) generate microwave signals with ultra-low phase noise by incorporating long optical fiber loops as high-Q energy storage elements. However, long fiber loops reduce the free spectral range, leading to dense oscillation modes and requiring ultra-narrowband filters for single-mode operation, posing a long-standing trade-off between phase noise and mode purity. Here, we present a low-cost and scalable solution that breaks this trade-off. By inserting three cascaded zero-dispersion recirculating loops (ZD-RLs) into an amplified spontaneous emission (ASE)-based OEO, robust single-mode operation is achieved without using ultra-narrowband filters. The longest ZD-RL enhances the Q-factor of the microwave photonic filter (MPF) 4100 times, while the shorter loops increase the peak spacing within the MPF’s passband to enable single-mode operation. This yields a sidemode suppression ratio of 72.7 dB and phase noise of –122 dBc Hz −1 at 10 kHz offset at 10 GHz, matching commercial generators. This work shows that even low-cost broadband ASE sources can generate high-quality microwave signals, bridging the gap between laboratory OEO demonstrations and practical signal generators.

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Publication Details

Journal
Light Science & Applications
Published
2026-09-16
DOI
https://doi.org/10.1038/s41377-026-02413-3
Primary Topic
Advanced Photonic Communication Systems
Type
article
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article

Breaking the phase noise–mode purity trade-off in long-loop OEOs via cascaded zero-dispersion recirculating loops

Lawrence R. Chen, David V. Plant, Santiago Bernal, Zhuoran Wang
Light Science & Applications
Advanced Photonic Communication Systems
article

Breaking the phase noise–mode purity trade-off in long-loop OEOs via cascaded zero-dispersion recirculating loops

Lawrence R. Chen, David V. Plant, Santiago Bernal, Zhuoran Wang
article en

Abstract

Abstract Optoelectronic oscillators (OEOs) generate microwave signals with ultra-low phase noise by incorporating long optical fiber loops as high-Q energy storage elements. However, long fiber loops reduce the free spectral range, leading to dense oscillation modes and requiring ultra-narrowband filters for single-mode operation, posing a long-standing trade-off between phase noise and mode purity. Here, we present a low-cost and scalable solution that breaks this trade-off. By inserting three cascaded zero-dispersion recirculating loops (ZD-RLs) into an amplified spontaneous emission (ASE)-based OEO, robust single-mode operation is achieved without using ultra-narrowband filters. The longest ZD-RL enhances the Q-factor of the microwave photonic filter (MPF) 4100 times, while the shorter loops increase the peak spacing within the MPF’s passband to enable single-mode operation. This yields a sidemode suppression ratio of 72.7 dB and phase noise of –122 dBc Hz −1 at 10 kHz offset at 10 GHz, matching commercial generators. This work shows that even low-cost broadband ASE sources can generate high-quality microwave signals, bridging the gap between laboratory OEO demonstrations and practical signal generators.

Light Science & ApplicationsVol. 15(1)
McGill University (CA)
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Photonic Communication Systems
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Breaking the phase noise–mode purity trade-off in long-loop OEOs via cascaded zero-dispersion recirculating loops — Lawrence R. Chen, David V. Plant, et al. · Light Science & Applications (2026) | TGRS Research Map | TGRS