Photonic chip-based low-noise microwave oscillator

Author:

Kudelin IgorORCID,Groman William,Ji Qing-XinORCID,Guo JoelORCID,Kelleher Megan L.ORCID,Lee DahyeonORCID,Nakamura TakumaORCID,McLemore Charles A.,Shirmohammadi PedramORCID,Hanifi Samin,Cheng Haotian,Jin NaijunORCID,Wu LueORCID,Halladay Samuel,Luo Yizhi,Dai ZhaoweiORCID,Jin Warren,Bai Junwu,Liu YifanORCID,Zhang WeiORCID,Xiang ChaoORCID,Chang Lin,Iltchenko Vladimir,Miller OwenORCID,Matsko AndreyORCID,Bowers Steven M.,Rakich Peter T.,Campbell Joe C.,Bowers John E.ORCID,Vahala Kerry J.ORCID,Quinlan FranklynORCID,Diddams Scott A.ORCID

Abstract

AbstractNumerous modern technologies are reliant on the low-phase noise and exquisite timing stability of microwave signals. Substantial progress has been made in the field of microwave photonics, whereby low-noise microwave signals are generated by the down-conversion of ultrastable optical references using a frequency comb1–3. Such systems, however, are constructed with bulk or fibre optics and are difficult to further reduce in size and power consumption. In this work we address this challenge by leveraging advances in integrated photonics to demonstrate low-noise microwave generation via two-point optical frequency division4,5. Narrow-linewidth self-injection-locked integrated lasers6,7 are stabilized to a miniature Fabry–Pérot cavity8, and the frequency gap between the lasers is divided with an efficient dark soliton frequency comb9. The stabilized output of the microcomb is photodetected to produce a microwave signal at 20 GHz with phase noise of −96 dBc Hz−1 at 100 Hz offset frequency that decreases to −135 dBc Hz−1 at 10 kHz offset—values that are unprecedented for an integrated photonic system. All photonic components can be heterogeneously integrated on a single chip, providing a significant advance for the application of photonics to high-precision navigation, communication and timing systems.

Publisher

Springer Science and Business Media LLC

Cited by 20 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Octave-spanning Kerr soliton frequency combs in dispersion- and dissipation-engineered lithium niobate microresonators;Light: Science & Applications;2024-09-02

2. Low Noise W-Band Photonic Oscillator;IEEE Journal of Selected Topics in Quantum Electronics;2024-09

3. Injection Locked Low Noise Chip-Based Silica Soliton Microwave Oscillator;IEEE Journal of Selected Topics in Quantum Electronics;2024-09

4. Coherent Optical-to-Microwave Link Using an Integrated Microcomb;IEEE Journal of Selected Topics in Quantum Electronics;2024-09

5. Tunable broadband two-point-coupled ultra-high-Q visible and near-infrared photonic integrated resonators;Photonics Research;2024-08-19

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