Buddhiraju Siddharth, Dutt Avik, Minkov Momchil, Williamson Ian A D, Fan Shanhui
Ginzton Laboratory, Department of Electrical Engineering, Stanford University, Stanford, CA, USA.
Nat Commun. 2021 Apr 23;12(1):2401. doi: 10.1038/s41467-021-22670-7.
Arbitrary linear transformations are of crucial importance in a plethora of photonic applications spanning classical signal processing, communication systems, quantum information processing and machine learning. Here, we present a photonic architecture to achieve arbitrary linear transformations by harnessing the synthetic frequency dimension of photons. Our structure consists of dynamically modulated micro-ring resonators that implement tunable couplings between multiple frequency modes carried by a single waveguide. By inverse design of these short- and long-range couplings using automatic differentiation, we realize arbitrary scattering matrices in synthetic space between the input and output frequency modes with near-unity fidelity and favorable scaling. We show that the same physical structure can be reconfigured to implement a wide variety of manipulations including single-frequency conversion, nonreciprocal frequency translations, and unitary as well as non-unitary transformations. Our approach enables compact, scalable and reconfigurable integrated photonic architectures to achieve arbitrary linear transformations in both the classical and quantum domains using current state-of-the-art technology.
任意线性变换在众多光子应用中至关重要,这些应用涵盖经典信号处理、通信系统、量子信息处理和机器学习。在此,我们提出一种光子架构,通过利用光子的合成频率维度来实现任意线性变换。我们的结构由动态调制的微环谐振器组成,这些谐振器实现了由单个波导承载的多个频率模式之间的可调耦合。通过使用自动微分对这些短程和长程耦合进行逆向设计,我们在输入和输出频率模式之间的合成空间中以接近单位保真度和良好的缩放比例实现了任意散射矩阵。我们表明,相同的物理结构可以重新配置以实现多种操作,包括单频转换、非互易频率平移以及酉变换和非酉变换。我们的方法能够利用当前的先进技术,实现紧凑、可扩展且可重新配置的集成光子架构,以在经典和量子领域中实现任意线性变换。