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基于单个硅同相/正交调制器的稳健可重构射频光子滤波器。

Robust reconfigurable radiofrequency photonic filters based on a single silicon in-phase/quadrature modulator.

作者信息

Yue Hengsong, Chu Tao

机构信息

College of Information Science and Electronic Engineering, Zhejiang University, Hangzhou 310027, China.

出版信息

Nanophotonics. 2023 Oct 25;12(22):4175-4184. doi: 10.1515/nanoph-2023-0459. eCollection 2023 Nov.

Abstract

Combining integrated photonics and radiofrequency (RF) signals in the optical domain can help overcome the limitations of traditional RF systems. However, it is challenging to achieve environmentally insensitive filtering in wireless communications using integration schemes. In this report, the performance of robust RF filters based on a single silicon in-phase/quadrature modulator with significantly improved temperature and optical carrier wavelength sensitivities, which were suppressed by more than three orders of magnitude compared with those of silicon resonators, was experimentally evaluated. Upconversion and the processing of signals were simultaneously realized on the modulator by setting the relative phases of the arms and the bias voltages. Moreover, the filters can be reconfigured as low-pass, high-pass, band-pass, or band-stop filters. From 25 to 75 °C, the center frequency variation was within 0.2 GHz. From 1500 to 1600 nm, the center frequency variation was within 2 GHz. The proposed scheme allows for filtering and reconfiguration without the use of optical processing modules such as resonators or delay lines, thus providing a novel approach to signal processing and a new robust filter for scenarios with dynamic environments.

摘要

在光域中结合集成光子学和射频(RF)信号有助于克服传统RF系统的局限性。然而,使用集成方案在无线通信中实现对环境不敏感的滤波具有挑战性。在本报告中,对基于单个硅同相/正交调制器的稳健RF滤波器的性能进行了实验评估,该调制器具有显著提高的温度和光载波波长灵敏度,与硅谐振器相比,其灵敏度被抑制了三个数量级以上。通过设置臂的相对相位和偏置电压,在上变频器上同时实现信号的上变频和处理。此外,滤波器可以重新配置为低通、高通、带通或带阻滤波器。在25至75°C范围内,中心频率变化在0.2 GHz以内。在1500至1600 nm范围内,中心频率变化在2 GHz以内。所提出的方案允许在不使用诸如谐振器或延迟线等光学处理模块的情况下进行滤波和重新配置,从而为信号处理提供了一种新颖的方法,并为动态环境场景提供了一种新型的稳健滤波器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b2a/11501990/b9c1904571e8/j_nanoph-2023-0459_fig_001.jpg

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