aleonardoyoung@pku.edu.cn
byaowenhu@pku.edu.cn
收稿日期:2023-10-29,
修回日期:2024-07-17,
录用日期:2024-07-23,
网络出版日期:2024-10-10,
纸质出版日期:2024-12
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Efficient microresonator frequency combs[J]. eLight, 2024,4.
Qi-Fan Yang, Yaowen Hu, Victor Torres-Company, et al. Efficient microresonator frequency combs[J]. Elight, 2024, 4.
Efficient microresonator frequency combs[J]. eLight, 2024,4. DOI: 10.1186/s43593-024-00075-5.
Qi-Fan Yang, Yaowen Hu, Victor Torres-Company, et al. Efficient microresonator frequency combs[J]. Elight, 2024, 4. DOI: 10.1186/s43593-024-00075-5.
The rapid development of optical frequency combs from their table-top origins towards chip-scale platforms has opened up exciting possibilities for comb functionalities outside laboratories. Enhanced nonlinear processes in microresonators have emerged as a mainstream comb-generating mechanism with compelling advantages in size
weight
and power consumption. The established understanding of gain and loss in nonlinear microresonators
along with recently developed ultralow-loss nonlinear photonic circuitry
has boosted the optical energy conversion efficiency of microresonator frequency comb (microcomb) devices from below a few percent to above 50%. This review summarizes the latest advances in novel photonic devices and pumping strategies that contribute to these milestones of microcomb efficiency. The resulting benefits for high-performance integration of comb applications are also discussed before summarizing the remaining challenges.
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