Tailoring microcombs with inverse-designed, meta-dispersion microresonators

被引:0
|
作者
Erwan Lucas
Su-Peng Yu
Travis C. Briles
David R. Carlson
Scott B. Papp
机构
[1] Time and Frequency Division,Department of Physics
[2] National Institute of Standards and Technology,undefined
[3] University of Colorado,undefined
[4] Octave Photonics,undefined
[5] Laboratoire ICB,undefined
[6] UMR CNRS 6303,undefined
来源
Nature Photonics | 2023年 / 17卷
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摘要
Nonlinear wave mixing in optical microresonators offers new perspectives to generate compact optical-frequency microcombs, which enable an ever-growing number of applications. Microcombs exhibit a spectral profile that is primarily determined by their microresonator’s dispersion. One example is the sech2 spectrum of dissipative Kerr solitons under anomalous group-velocity dispersion. Here we introduce an inverse-design approach to spectrally shape microcombs, by optimizing an arbitrary meta-dispersion in a resonator. By incorporating the system’s governing equation into a genetic algorithm, we are able to efficiently identify a dispersion profile that produces a microcomb closely matching a user-defined target spectrum, such as spectrally flat combs or near-Gaussian pulses. We show a concrete implementation of these intricate optimized dispersion profiles, using selective bidirectional-mode hybridization in photonic-crystal resonators. Moreover, we fabricate and explore several microcomb generators with such flexible ‘meta’ dispersion control. Their dispersion is not only controlled by the waveguide composing the resonator, but also by a corrugation inside the resonator, which geometrically controls the spectral distribution of the bidirectional coupling in the resonator. This approach provides programmable mode-by-mode frequency splitting and thus greatly increases the design space for controlling the nonlinear dynamics of optical states such as Kerr solitons.
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页码:943 / 950
页数:7
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