Integrated Optical Vortex Microcomb
Abstract
The explorations of physical degrees of freedom with infinite dimensionalities, such as orbital angular momentum and frequency of light, have profoundly reshaped the landscape of modern optics with representative photonic functional devices including optical vortex emitters and frequency combs. In nanophotonics, whispering gallery mode microresonators naturally support orbital angular momentum of light and have been demonstrated as on-chip emitters of monochromatic optical vortices. On the other hand, whispering gallery mode microresonators serve as a highly efficient nonlinear optical platform for producing light at different frequencies - i.e., microcombs. Here, we interlace the optical vortices and microcombs by demonstrating an optical vortex comb on an III-V integrated nonlinear microresonator. The angular-grating-dressed nonlinear microring simultaneously emits spatiotemporal light springs consisting of 50 orbital angular momentum modes that are each spectrally addressed to the frequency components (longitudinal whispering gallery modes) of the generated microcomb. We further experimentally generate optical pulses with time-varying orbital angular momenta by carefully introducing a specific intermodal phase relation to spatiotemporal light springs. This work may immediately boost the development of integrated nonlinear/quantum photonics for exploring fundamental optical physics and advancing photonic quantum technology.
Cite
@article{arxiv.2212.07641,
title = {Integrated Optical Vortex Microcomb},
author = {Bo Chen and Yueguang Zhou and Yang Liu and Chaochao Ye and Qian Cao and Peinian Huang and Chanju Kim and Yi Zheng and Leif Katsuo Oxenløwe and Kresten Yvind and Jin Li and Jiaqi Li and Yanfeng Zhang and Chunhua Dong and Songnian Fu and Qiwen Zhan and Xuehua Wang and Minhao Pu and Jin Liu},
journal= {arXiv preprint arXiv:2212.07641},
year = {2024}
}
Comments
To appear in Nature Photonics