Botter Roel, Ye Kaixuan, Klaver Yvan, Suryadharma Radius, Daulay Okky, Liu Gaojian, van den Hoogen Jasper, Kanger Lou, van der Slot Peter, Klein Edwin, Hoekman Marcel, Roeloffzen Chris, Liu Yang, Marpaung David
Nonlinear Nanophotonics, MESA+ Institute of Nanotechnology, University of Twente, Enschede, Netherlands.
LioniX International, Enschede, Netherlands.
Sci Adv. 2022 Oct 7;8(40):eabq2196. doi: 10.1126/sciadv.abq2196.
Coherent optomechanical interaction known as stimulated Brillouin scattering (SBS) can enable ultrahigh resolution signal processing and narrow-linewidth lasers. SBS has recently been studied extensively in integrated waveguides; however, many implementations rely on complicated fabrication schemes. The absence of SBS in standard and mature fabrication platforms prevents its large-scale circuit integration. Notably, SBS in the emerging silicon nitride (SiN) photonic integration platform is currently out of reach because of the lack of acoustic guidance. Here, we demonstrate advanced control of backward SBS in multilayer SiN waveguides. By optimizing the separation between two SiN layers, we unlock acoustic waveguiding in this platform, potentially leading up to 15× higher Brillouin gain coefficient than previously possible in SiN waveguides. We use the enhanced SBS gain to demonstrate a high-rejection microwave photonic notch filter. This demonstration opens a path to achieving Brillouin-based photonic circuits in a standard, low-loss SiN platform.
被称为受激布里渊散射(SBS)的相干光机械相互作用能够实现超高分辨率信号处理和窄线宽激光器。近来,SBS在集成波导中得到了广泛研究;然而,许多实现方式依赖于复杂的制造方案。标准且成熟的制造平台中不存在SBS,这阻碍了其大规模电路集成。值得注意的是,由于缺乏声导,新兴的氮化硅(SiN)光子集成平台目前无法实现SBS。在此,我们展示了对多层SiN波导中反向SBS的先进控制。通过优化两个SiN层之间的间距,我们在该平台中实现了声波导,这可能使布里渊增益系数比之前在SiN波导中所能达到的高出15倍。我们利用增强的SBS增益展示了一种高抑制微波光子陷波滤波器。这一演示为在标准、低损耗SiN平台上实现基于布里渊的光子电路开辟了一条道路。