论文标题
可调式RF光子过滤,硅中带有较高的带外排斥
Tunable RF-photonic filtering with high out-of-band rejection in silicon
论文作者
论文摘要
对高速和大带宽的不断增长的需求使光子系统成为下一代电信和雷达技术的领先候选人。光子平台可以在保持较小的足迹的同时提供高性能,并提供带有光纤传输光纤的自然接口。但是,生产与RF组件竞争的锋利,窄带过滤器仍然具有挑战性。在本文中,我们演示了与硅光子学中以前可能更高的$ \ sim100 \ times $频谱分辨率的全硅RF光子多杆过滤器。这种增强的性能是利用工程化的布里鲁因相互作用来访问长寿命的声子,从而大大延长了硅的可用连贯时间。这个基于布里鲁因的光学机械系统可实现超鼻涕(3.5 MHz)多杆响应,可以通过宽($ \ sim10 $ ghz)光谱频段进行调整。我们使用CMOS兼容的制造技术在全硅光学波导系统中完成此操作。除了为硅光子学带来大大提高的性能外,我们还展示了可靠性和鲁棒性,这对于从科学台面转变为高影响现场 - 势不可挡技术的基于硅的光学技术必不可少。
The ever-increasing demand for high speed and large bandwidth has made photonic systems a leading candidate for the next generation of telecommunication and radar technologies. The photonic platform enables high performance while maintaining a small footprint and provides a natural interface with fiber optics for signal transmission. However, producing sharp, narrow-band filters that are competitive with RF components has remained challenging. In this paper, we demonstrate all-silicon RF-photonic multi-pole filters with $\sim100\times$ higher spectral resolution than previously possible in silicon photonics. This enhanced performance is achieved utilizing engineered Brillouin interactions to access long-lived phonons, greatly extending the available coherence times in silicon. This Brillouin-based optomechanical system enables ultra-narrow (3.5 MHz) multi-pole response that can be tuned over a wide ($\sim10$ GHz) spectral band. We accomplish this in an all-silicon optomechanical waveguide system, using CMOS compatible fabrication techniques. In addition to bringing greatly enhanced performance to silicon photonics, we demonstrate reliability and robustness, necessary to transition silicon-based optomechanical technologies from the scientific bench-top to high-impact field-deployable technologies.