Ultralow-power chip-based soliton microcombs for photonic integration
Junqiu Liu, Arslan S. Raja, Maxim Karpov, Bahareh Ghadiani, Martin H., P. Pfeiffer, Nils J. Engelsen, Hairun Guo, Michael Zervas, and Tobias J., Kippenberg

TL;DR
This paper demonstrates ultralow-power generation of high-repetition-rate soliton microcombs in high-Q silicon nitride microresonators, enabling easier integration with existing photonic technologies for advanced optical applications.
Contribution
It introduces a photonic Damascene reflow process to achieve ultralow-power soliton formation in high-Q Si3N4 microresonators at 99 GHz, simplifying access and integration.
Findings
Achieved soliton formation at 6.2 mW in waveguide with high-Q resonators.
Accessible solitons via slow laser tuning in many resonances.
Compatible with silicon-photonics lasers for integrated applications.
Abstract
The generation of dissipative Kerr solitons in optical microresonators has provided a route to compact frequency combs of high repetition rate, which have already been employed for optical frequency synthesizers, ultrafast ranging, coherent telecommunication and dual-comb spectroscopy. Silicon nitride (SiN) microresonators are promising for photonic integrated soliton microcombs. Yet to date, soliton formation in SiN microresonators at electronically detectable repetition rates, typically less than 100 GHz, is hindered by the requirement of external power amplifiers, due to the low quality () factors, as well as by thermal effects which necessitate the use of frequency agile lasers to access the soliton state. These requirements complicate future photonic integration, heterogeneous or hybrid, of soliton microcomb devices based on SiN microresonators with other…
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