Efficient microresonator frequency combs
Review article, 2024

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.

Nonlinear photonics

Optical frequency comb

Optical microresonator

Author

Qi-Fan Yang

Beijing University of Technology

Yaowen Hu

Beijing University of Technology

Harvard University

Victor Torres Company

Chalmers, Microtechnology and Nanoscience (MC2), Photonics

Kerry Vahala

CALTECH, TJ Watson Lab Appl Phys

ELIGHT

2097-1710 (ISSN) 2662-8643 (eISSN)

Vol. 4 1 18

Dark-Soliton Engineering in Microresonator Frequency Combs (DarkComb)

European Commission (EC) (EC/H2020/771410), 2018-05-01 -- 2023-04-30.

Unlocking the Full-dimensional Fiber Capacity

Knut and Alice Wallenberg Foundation (KAW 2018.0090), 2019-07-01 -- 2024-06-30.

Multidimensional coherent communications with microcombs

Swedish Research Council (VR) (2020-00453), 2020-12-01 -- 2026-11-30.

Subject Categories

Atom and Molecular Physics and Optics

Other Physics Topics

Communication Systems

DOI

10.1186/s43593-024-00075-5

More information

Latest update

10/29/2024