论文标题
si $ _ {3} $ n $ _ {4} $ resonator用作Kerr频率梳子的可调泵
Sub-kHz-linewidth external-cavity laser (ECL) with Si$_{3}$N$_{4}$ resonator used as a tunable pump for a Kerr frequency comb
论文作者
论文摘要
将直接带gap III-V材料中的光学增益与高级光子集成电路提供的可调光反馈相结合是芯片尺度外部腔激光器(ECL)的关键,提供宽带可调性以及低光学线路。可以使用低损坏硅(Si $ _ {3} $ n $ _ {4} $)波导有效地实施外部反馈电路,这些波导不会受到两光子吸收的影响,因此可以处理比常规硅光照学更高的功率水平。但是,在芯片尺度模块中使用可调外部反馈电路的基于III-V的增益元素仍然代表着一个挑战,需要技术要求在技术要求的异质整合技术或昂贵的高精度多芯片组件。在这项工作中,我们演示了Si $ _ {3} $ n $ _ {4} $ - 基于基于混合的ECL,这些集成的ECL利用了3D打印的结构,例如cavity of-loss couplipition flogy Alycompition flogy Alignip and Councemitized,以保持积极的稳定性,以保持积极的稳定性,从而使整数保持积极的效果,从而使整个需要保持积极的态度,从而使整个需要保持积极的态度,从而使整数保持积极的态度,从而使整数保持积极的态度。技术。在概念验证实验中,我们证明了ECL提供90 nm的调谐范围(1480 nm-1570 nm),其芯片输出功率高于12 dBm,侧模抑制比为59 dB。我们实现了979 Hz的内在线宽,这是可比反馈体系结构报告的最低值之一。 III-V增益元件与Si $ _ {3} $ n $ _ {4} $ - 基于可调的反馈电路的光损耗的光损失损失约为(1.6 $ \ pm $ 0.2)dB。我们将ECL用作可调泵激光器来产生耗散的Kerr Soliton频率梳子。据我们所知,我们的实验代表了用杂种ECL衍生的泵产生的单纤维kerr梳子的首次演示。
Combining optical gain in direct-bandgap III-V materials with tunable optical feedback offered by advanced photonic integrated circuits is key to chip-scale external-cavity lasers (ECL), offering wideband tunability along with low optical linewidths. External feedback circuits can be efficiently implemented using low-loss silicon nitride (Si$_{3}$N$_{4}$) waveguides, which do not suffer from two-photon absorption and can thus handle much higher power levels than conventional silicon photonics. However, co-integrating III-V-based gain elements with tunable external feedback circuits in chip-scale modules still represents a challenge, requiring either technologically demanding heterogeneous integration techniques or costly high-precision multi-chip assembly. In this work, we demonstrate Si$_{3}$N$_{4}$-based hybrid integrated ECL that exploit 3D-printed structures such as intra-cavity photonic wire bonds and facet-attached microlenses for low-loss optical coupling with relaxed alignment tolerances, thereby overcoming the need for active alignment while maintaining the full flexibility of multi-chip integration techniques. In a proof-of-concept experiment, we demonstrate an ECL offering a 90 nm tuning range (1480 nm - 1570 nm) with on-chip output powers above 12 dBm and side-mode suppression ratios of up to 59 dB. We achieve an intrinsic linewidth of 979 Hz, which is among the lowest values reported for comparable feedback architectures. The optical loss of the intra-cavity photonic wire bond between the III-V gain element and the Si$_{3}$N$_{4}$-based tunable feedback circuit amounts to approximately (1.6 $\pm$ 0.2) dB. We use the ECL as a tunable pump laser to generate a dissipative Kerr soliton frequency comb. To the best of our knowledge, our experiments represent the first demonstration of a single-soliton Kerr comb generated with a pump that is derived from a hybrid ECL.