Published March 8, 2024
| Published
Journal Article
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Multimodality integrated microresonators using the Moiré speedup effect
Abstract
High-Q microresonators are indispensable components of photonic integrated circuits and offer several useful operational modes. However, these modes cannot be reconfigured after fabrication because they are fixed by the resonator’s physical geometry. In this work, we propose a Moiré speedup dispersion tuning method that enables a microresonator device to operate in any of three modes. Electrical tuning of Vernier coupled rings switches operating modality to Brillouin laser, bright microcomb, and dark microcomb operation on demand using the same hybrid-integrated device. Brillouin phase matching and microcomb operation across the telecom C-band is demonstrated. Likewise, by using a single-pump wavelength, the operating mode can be switched. As a result, one universal design can be applied across a range of applications. The device brings flexible mixed-mode operation to integrated photonic circuits.
Copyright and License
© 2024 the authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original US government works. https://www.science.org/about/science-licenses-journal-article-reuse
Acknowledgement
We thank H. Blauvelt at EMCORE Corporation for supplying the DFB lasers.
Funding
This work was supported by the Defense Advanced Research Projects Agency (DARPA) (W911NF2310178 and HR0011-22-2-0009) and by the Air Force Office of Scientific Research (AFOSR) (FA9550-23-1-0587).
Contributions
The concepts were developed by Q.-X.J., P.L., W.J., J.E.B., and K.J.V. W.J. and J.G. designed and fabricated the device with assistance from L.W., Q.-X.J., J.P., A.F., and M.P. L.W. packaged the DFB lasers used in this study. Q.-X.J. and P.L. performed the measurements with assistance from Z.Y. All the authors analyzed the data and wrote the manuscript. K.J.V. and J.E.B. supervised the project.
Data Availability
All data are available in the manuscript, in the supplementary materials, or at Figshare (41).
Conflict of Interest
The authors declare no competing financial interests.
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Additional details
- ISSN
- 1095-9203
- Defense Advanced Research Projects Agency
- W911NF2310178
- Defense Advanced Research Projects Agency
- HR0011-22-2-0009
- United States Air Force Office of Scientific Research
- FA9550-23-1-0587