Kalubovilage Manoj, Endo Mamoru, Schibli Thomas R
Opt Express. 2020 Aug 17;28(17):25400-25409. doi: 10.1364/OE.399425.
Phase noise performance of photonic microwave systems, such as optical frequency division (OFD), can surpass state-of-the-art electronic oscillators by several orders of magnitude. However, high-finesse cavities and active stabilization requirements in OFD systems make them complicated and potentially unfit for field deployment. Ultra-low noise mode-locked monolithic lasers offer a viable alternative for a compact and simple photonic microwave system. Here we present a free-running monolithic laser-based 8 GHz microwave generation with ultra-low phase noise performance comparable to laboratory OFD systems. The measured noise performance reached -130 dBc/Hz at 100 Hz, - 150 dBc/Hz at 1 kHz, and -167 dBc/Hz at 10 kHz offsets from the 8-GHz carrier. We also report a sub-Poissonian noise floor of -179 dBc/Hz above 30 kHz (timing noise floor of 32 zs Hz), which is ∼12 dB below the noise floor of time-invariant shot noise. In addition to the low phase noise, the system is compact, with a power consumption of less than 9 W, and offers excellent potential for mobile or space-borne applications.
诸如光频分频(OFD)等光子微波系统的相位噪声性能,可比最先进的电子振荡器高出几个数量级。然而,OFD系统中的高精细度腔和有源稳定要求使其变得复杂,并且可能不适合现场部署。超低噪声锁模单片激光器为紧凑且简单的光子微波系统提供了一种可行的替代方案。在此,我们展示了一种基于自由运行单片激光器的8 GHz微波产生,其具有与实验室OFD系统相当的超低相位噪声性能。在相对于8 GHz载波100 Hz偏移处测得的噪声性能达到-130 dBc/Hz,在1 kHz处为-150 dBc/Hz,在10 kHz处为-167 dBc/Hz。我们还报告了在30 kHz以上-179 dBc/Hz的亚泊松噪声本底(定时噪声本底为32 zs Hz),这比时不变散粒噪声的噪声本底低约12 dB。除了低相位噪声外,该系统紧凑,功耗小于9 W,并且在移动或星载应用方面具有出色的潜力。