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Polarization- and Phase-Sensitive Low-Coherence Interferometry Setup for the Characterization of Integrated Optical Components

机译:偏振和相位敏感的低相干干涉测量装置,用于表征集成光学组件

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摘要

A novel phase-sensitive and polarization-sensitive scheme to implement an optical low-coherence interferometry (OLCI) system is presented. With respect to conventional phase-sensitive OLCI, in our system the interference fringes of the coherent light used to recover phase information are conveniently detected by the same photodetector acquiring the low-coherence signal. This strategy guarantees the intrinsic synchronization of the two signals at any acquisition speed, makes measurements more robust against long-term fluctuations in the experimental setup, and reduces the measurement time without affecting phase accuracy. The residual phase error after the phase recovery procedure is less than 0.01 rad, to the authors' knowledge one of the best results reported so far for OLCI measurements. Polarization sensitivity is achieved in the same setup by means of polarization selective retarders (PSRs) employed to couple light into and out of the device under test. This scheme enables to retrieve the time and frequency domain response of an optical device for both the polarization states from a single data acquisition. The presented technique is extremely versatile; it can be implemented by using either fiber or free space optics and applied to the characterization of generic optical devices. Its effectiveness is demonstrated by reporting the measurement of the amplitude and phase response of integrated optical devices based on ring resonators.
机译:提出了一种新的相位敏感和偏振敏感方案,以实现光学低相干干涉测量(OLCI)系统。对于传统的相敏OLCI,在我们的系统中,用于恢复相位信息的相干光的干涉条纹可以通过获取低相干信号的同一光电探测器方便地检测到。该策略可确保在任何采集速度下两个信号的固有同步,使测量对实验设置中的长期波动更为稳健,并减少了测量时间而不会影响相位精度。据作者所知,相恢复程序后的残留相位误差小于0.01 rad,是迄今为止报告的OLCI测量的最佳结果之一。在相同的设置下,通过偏振选择延迟器(PSR)可以实现偏振灵敏度,该偏振选择延迟器用于将光耦合到被测器件中或从被测器件中耦合出。该方案使得能够从单个数据获取中针对两种偏振状态检索光学设备的时域和频域响应。提出的技术非常灵活;它可以通过使用光纤或自由空间光学器件来实现,并应用于通用光学设备的表征。通过报告基于环形谐振器的集成光学设备的幅度和相位响应的测量,证明了其有效性。

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