Xiao Yunhao, Wang Yiping, Zhu Dan, Shi Jingzhan, Liu Qiang, Gao Lingge
Appl Opt. 2023 Jun 1;62(16):E32-E36. doi: 10.1364/AO.480607.
We propose and demonstrate a new, to the best of our knowledge, microwave interference-based scheme with high sensitivity and tunable measurement range, which is realized by a Mach-Zehnder interferometer (MZI). A chirped fiber Bragg grating and single-mode fiber serve as the two unbalanced arms of the RF interferometer. The induced differential chromatic dispersion transfers the wavelength shift of the fiber Bragg gratings to the change of the RF phase difference between the two interferometric carriers, which ultimately leads to the variation of the RF signal intensity. The phase sensitivity can be improved by adjusting the power ratio of the two beams in the interferometer and coarse adjustment of the optical variable delay line (OVDL). The OVDL is also employed to tune the measurement range of the system by adjusting the time delay difference between the two arms of the MZI. The system effectively solves the problem of unavoidable attenuation of the sensitivity of the optical carrier-based microwave interferometry system caused by the change of phase difference due to the change of measurement parameters, avoiding the mutual constraint between the measurement range and high sensitivity.
据我们所知,我们提出并演示了一种基于微波干涉的新方案,该方案具有高灵敏度和可调测量范围,由马赫曾德尔干涉仪(MZI)实现。啁啾光纤布拉格光栅和单模光纤用作射频干涉仪的两个不平衡臂。诱导的差分色散将光纤布拉格光栅的波长偏移转换为两个干涉载波之间射频相位差的变化,最终导致射频信号强度的变化。通过调整干涉仪中两束光的功率比以及对光学可变延迟线(OVDL)进行粗调,可以提高相位灵敏度。OVDL还用于通过调整MZI两臂之间的时间延迟差来调整系统的测量范围。该系统有效解决了基于光载波的微波干涉测量系统因测量参数变化导致相位差变化而不可避免地降低灵敏度的问题,避免了测量范围和高灵敏度之间的相互制约。