Énergie, Matériaux et Télécommunications, Institut National de la Recherche Scientifique, 1650 Lionel-Boulet Blvd., Varennes, J3X 1P7, Quebec, Canada.
Department of Engineering Physics, Fabulas Laboratory, Polytechnique Montréal, 2500 Chem. de Polytechnique, Montréal, H3T 1J4, Quebec, Canada.
Nat Commun. 2023 Mar 31;14(1):1808. doi: 10.1038/s41467-023-37472-2.
Photonic-based implementation of advanced computing tasks is a potential alternative to mitigate the bandwidth limitations of electronics. Despite the inherent advantage of a large bandwidth, photonic systems are generally bulky and power-hungry. In this respect, all-pass spectral phase filters enable simultaneous ultrahigh speed operation and minimal power consumption for a wide range of signal processing functionalities. Yet, phase filters offering GHz to sub-GHz frequency resolution in practical, integrated platforms have remained elusive. We report a fibre Bragg grating-based phase filter with a record frequency resolution of 1 GHz, at least 10× improvement compared to a conventional optical waveshaper. The all-fibre phase filter is employed to experimentally realize high-speed fully passive NOT and XNOR logic operations. We demonstrate inversion of a 45-Gbps 127-bit random sequence with an energy consumption of ~34 fJ/bit, and XNOR logic at a bit rate of 10.25 Gbps consuming ~425 fJ/bit. The scalable implementation of phase filters provides a promising path towards widespread deployment of compact, low-energy-consuming signal processors.
基于光子学的高级计算任务实现是缓解电子学带宽限制的一种潜在方法。尽管光子学系统具有大带宽的固有优势,但它们通常体积庞大且功耗高。在这方面,全通光谱相位滤波器能够实现超高速运行和最小功耗,同时实现广泛的信号处理功能。然而,在实际的集成平台中,提供 GHz 到亚 GHz 频率分辨率的相位滤波器仍然难以实现。我们报告了一种基于光纤布拉格光栅的相位滤波器,其具有创纪录的 1GHz 频率分辨率,与传统的光学波形整形器相比,提高了至少 10 倍。该全光纤相位滤波器用于实验实现高速全无源 NOT 和 XNOR 逻辑运算。我们演示了以约 34fJ/bit 的能量消耗对 45Gbps 的 127 位随机序列进行反转,以及以约 425fJ/bit 的能量消耗在 10.25Gbps 比特率下进行 XNOR 逻辑运算。相位滤波器的可扩展实现为广泛部署紧凑型、低功耗信号处理器提供了一条有前途的途径。