论文标题

波长准确的非线性转换通过波数选择性的光子晶体谐振器中的波数选择性

Wavelength-Accurate Nonlinear Conversion through Wavenumber Selectivity in Photonic Crystal Resonators

论文作者

Stone, Jordan R., Lu, Xiyuan, Moille, Gregory, Westly, Daron, Rahman, Tahmid, Srinivasan, Kartik

论文摘要

集成的非线性波长转换器将光能从激光器或量子发射器传递到其他有用的颜色,但是色散限制了可实现的波长偏移的范围。此外,由于几何分散体,制造公差降低了设备产生特定目标波长的准确性。在这里,我们报告了非线性波长转换器,其操作并非取决于分散工程;但是,输出波长的精度高度控制。在我们的方案中,在光子晶体微孔子中的反向传播波之间的相干耦合诱导了一个光子带隙,该光子带隙分离出(在分散空间中)特定的波数,从而获得非线性增益。我们首先通过模拟其在第三次谐波生成,Kerr Microcomb中的分散波形成和四波混合bragg散射中的使用来证明该策略对参数非线性过程的广泛适用性。在实验中,我们证明了Kerr光学参数振荡器,其中这种波数选择性相干耦合指定了信号模式。结果,目标信号波长之间的差异<0.3%。此外,利用带隙保护的波数选择性,我们将输出频率连续调整了近300 GHz,而不会损害效率。我们的结果将带来微孔子为非线性光学设计的设计范式转移,并且它们在使用集成光子学的构建波长准确的光源的更大问题上取得了进展。

Integrated nonlinear wavelength converters transfer optical energy from lasers or quantum emitters to other useful colors, but chromatic dispersion limits the range of achievable wavelength shifts. Moreover, because of geometric dispersion, fabrication tolerances reduce the accuracy with which devices produce specific target wavelengths. Here, we report nonlinear wavelength converters whose operation is not contingent on dispersion engineering; yet, the output wavelengths are controlled with high accuracy. In our scheme, coherent coupling between counter-propagating waves in a photonic crystal microresonator induces a photonic bandgap that isolates (in dispersion space) specific wavenumbers for nonlinear gain. We first demonstrate the wide applicability of this strategy to parametric nonlinear processes, by simulating its use in third harmonic generation, dispersive wave formation in Kerr microcombs, and four-wave mixing Bragg scattering. In experiments, we demonstrate Kerr optical parametric oscillators in which such wavenumber-selective coherent coupling designates the signal mode. As a result, differences between the targeted and realized signal wavelengths are <0.3 percent. Moreover, leveraging the bandgap-protected wavenumber selectivity, we continuously tune the output frequencies by nearly 300 GHz without compromising efficiency. Our results will bring about a paradigm shift in how microresonators are designed for nonlinear optics, and they make headway on the larger problem of building wavelength-accurate light sources using integrated photonics.

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