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一种用于可编程光频分的可重构多通道片上光子滤波器。

A reconfigurable multi-channel on-chip photonic filter for programmable optical frequency division.

作者信息

Zhu Simeng, Yuan Bocheng, Fan Yizhe, Al-Rubaiee Mohanad, Sun Xiao, Li Zhibo, Hezarfen Ahmet Seckin, Kelly Anthony E, Marsh John H, Hou Lianping

机构信息

University of Glasgow, Glasgow G12 8QQ, UK.

出版信息

Nanophotonics. 2025 Jun 24;14(15):2619-2631. doi: 10.1515/nanoph-2025-0119. eCollection 2025 Aug.

Abstract

Recent advancements have broadened the application of photon filters based on Bragg gratings within optical communication networks and optical input/output interfaces. Traditional gratings, however, suffer from a fixed refractive index modulation distribution once manufactured, constraining their adaptability and flexibility. This study introduces a reconfigurable multi-channel photon filter on a silicon nitride on insulator platform. The filter incorporates an equivalent linearly chirped four-phase-shifted sampled Bragg grating with micro-heaters to enable thermo-optic tuning, facilitating programmable control over transmission spectral features. Experimental outcomes indicate the filter's capability to seamlessly transition among single, dual, and quad-band configurations, as well as a band-stop mode, with independent tuning of each band. Moreover, optical frequency division multiplexing experiments using a 50 GHz semiconductor mode-locked laser have affirmed the filter's tunability. In quad-band mode, band separations of 50, 100, and 150 GHz are achievable; in dual and single-band modes, band intervals extend from 150 to 250 GHz, allowing for precise single-wavelength selection. Featuring high tunability, minimal insertion losses, and superior signal side-mode suppression ratio, this filter structure supports the integration of programmable photonic devices into space optical communications, photonic integrated networks, and elastic optical networks.

摘要

近期的进展拓宽了基于布拉格光栅的光子滤波器在光通信网络和光输入/输出接口中的应用。然而,传统光栅一旦制造完成,其折射率调制分布就固定不变,这限制了它们的适应性和灵活性。本研究在绝缘体上氮化硅平台上引入了一种可重构多通道光子滤波器。该滤波器包含一个等效线性啁啾四相移采样布拉格光栅,并带有微加热器以实现热光调谐,便于对传输光谱特性进行可编程控制。实验结果表明,该滤波器能够在单波段、双波段和四波段配置以及带阻模式之间无缝切换,且每个波段可独立调谐。此外,使用50 GHz半导体锁模激光器进行的光频分复用实验证实了该滤波器的可调谐性。在四波段模式下,可实现50、100和150 GHz的波段间隔;在双波段和单波段模式下,波段间隔从150扩展到250 GHz,从而实现精确的单波长选择。这种滤波器结构具有高度可调谐性、极小的插入损耗和出色的信号边模抑制比,支持将可编程光子器件集成到空间光通信、光子集成网络和弹性光网络中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/424e/12322728/083bf80db0a7/j_nanoph-2025-0119_fig_001.jpg

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