Opt Lett. 2018 Aug 15;43(16):3997-4000. doi: 10.1364/OL.43.003997.
We demonstrate a simple all-fiber photonic phase detector that can measure the phase (timing) difference between an optical pulse train and a microwave signal with subfemtosecond resolution and -60 dB-level amplitude-to-phase conversion coefficient. It is based on passive phase biasing of a Sagnac loop by the intrinsic phase shift of a symmetric 3×3 fiber coupler. By eliminating the necessity of magneto-optic components or complex radio frequency (RF) electronics for phase biasing of the Sagnac loop, this phase detector has potential to be implemented as an integrated photonic device as well. When using this device for synchronization between a 250 MHz mode-locked Er-fiber laser and an 8 GHz microwave oscillator, the minimum residual phase noise floor reaches <-154 dBc/Hz (at 8 GHz carrier) with integrated root mean square (rms) timing jitter of 0.97 fs [1 Hz-1 MHz]. The long-term rms timing drift and frequency instability are 0.92 fs (over 5000 s) and 4×10 (at 10,000 s averaging time), respectively.
我们展示了一种简单的全光纤光子相位探测器,它可以测量光脉冲串和微波信号之间的相位(定时)差,具有亚飞秒分辨率和-60dB 级的幅度到相位转换系数。它基于通过对称 3×3 光纤耦合器的固有相位移动对萨格纳克环进行无源相位偏置。通过消除对萨格纳克环的相位偏置使用磁光组件或复杂的射频(RF)电子设备的必要性,这种相位探测器有可能被实现为集成光子器件。当将此器件用于 250MHz 锁模掺铒光纤激光器和 8GHz 微波振荡器之间的同步时,最小剩余相位噪声底达到-154dBc/Hz(在 8GHz 载波处),集成均方根(rms)定时抖动为 0.97fs[1Hz-1MHz]。长期 rms 定时漂移和频率不稳定度分别为 0.92fs(超过 5000s)和 4×10(在 10000s 平均时间内)。