Gertler Shai, Otterstrom Nils T, Gehl Michael, Starbuck Andrew L, Dallo Christina M, Pomerene Andrew T, Trotter Douglas C, Lentine Anthony L, Rakich Peter T
Department of Applied Physics, Yale University, New Haven, CT, 06520, USA.
Photonic and Phononic Microsystems, Sandia National Laboratories, Albuquerque, NM, 87185, USA.
Nat Commun. 2022 Apr 11;13(1):1947. doi: 10.1038/s41467-022-29590-0.
The growing demand for bandwidth makes photonic systems a leading candidate for future telecommunication and radar technologies. Integrated photonic systems offer ultra-wideband performance within a small footprint, which can naturally interface with fiber-optic networks for signal transmission. However, it remains challenging to realize narrowband (∼MHz) filters needed for high-performance communications systems using integrated photonics. In this paper, we demonstrate all-silicon microwave-photonic notch filters with 50× higher spectral resolution than previously realized in silicon photonics. This enhanced performance is achieved by utilizing optomechanical interactions to access long-lived phonons, greatly extending available coherence times in silicon. We use a multi-port Brillouin-based optomechanical system to demonstrate ultra-narrowband (2.7 MHz) notch filters with high rejection (57 dB) and frequency tunability over a wide spectral band (6 GHz) within a microwave-photonic link. We accomplish this with an all-silicon waveguide system, using CMOS-compatible fabrication techniques.
对带宽不断增长的需求使光子系统成为未来电信和雷达技术的主要候选者。集成光子系统在小尺寸内提供超宽带性能,能够自然地与光纤网络接口以进行信号传输。然而,使用集成光子学实现高性能通信系统所需的窄带(~MHz)滤波器仍然具有挑战性。在本文中,我们展示了全硅微波光子陷波滤波器,其光谱分辨率比之前在硅光子学中实现的高50倍。这种增强的性能是通过利用光机械相互作用来获取长寿命声子实现的,极大地延长了硅中的可用相干时间。我们使用基于多端口布里渊的光机械系统在微波光子链路中展示了具有高抑制(57 dB)和在宽光谱带(6 GHz)内频率可调谐性的超窄带(2.7 MHz)陷波滤波器。我们通过全硅波导系统,采用与CMOS兼容的制造技术实现了这一点。