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      Optically reconfigurable quasi-phase-matching in silicon nitride microresonators

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          Abstract

          Quasi-phase-matching has long been a widely used approach in nonlinear photonics, enabling efficient parametric frequency conversions such as second-harmonic generation. However, in silicon photonics the task remains challenging, as materials best suited for photonic integration lack second-order susceptibility ( χ (2)), and means for achieving momentum conservation are limited. Here we present optically reconfigurable quasi-phase-matching in large-radius silicon nitride microresonators, resulting in up to 12.5-mW on-chip second-harmonic generated power and a conversion efficiency of 47.6% W −1. Most importantly, we show that such all-optical poling can occur unconstrained from intermodal phase-matching, leading to broadly tunable second-harmonic generation. We confirm the phenomenon by two-photon imaging of the inscribed χ (2) grating structures within the microresonators as well as by in situ tracking of both the pump and second-harmonic mode resonances during all-optical poling. These results unambiguously establish that the photogalvanic effect, responsible for all-optical poling, can overcome phase mismatch constraints, even in resonant systems.

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          Photonic-chip-based frequency combs

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            On-chip signal processing

            Rachel Won (2011)
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              New CMOS-compatible platforms based on silicon nitride and Hydex for nonlinear optics

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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                Nature Photonics
                Nat. Photon.
                Springer Science and Business Media LLC
                1749-4885
                1749-4893
                January 06 2022
                Article
                10.1038/s41566-021-00925-5
                e2e8350f-1c86-4ced-8026-c353dc89619d
                © 2022

                https://creativecommons.org/licenses/by/4.0

                https://creativecommons.org/licenses/by/4.0

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