论文标题
使用无法区分的光子对的拓扑来源可调量子干扰
Tunable quantum interference using a topological source of indistinguishable photon pairs
论文作者
论文摘要
量子光的来源,特别是相关的光子对,在所有自由度上都无法区分,是基本资源,它可以实现连续可变的量子计算和范式(例如高斯玻色子采样)。纳米光系统提供了一个可扩展的平台,用于实现无法区分的相关光子对来源。但是,到目前为止,此类来源依赖于单个组件的使用,例如单个波导或环谐振器,后者提供了有限的调整光子之间光谱和时间相关性的能力。在这里,我们证明了拓扑光子系统的使用,该拓扑光子系统包含二维环谐振器,以生成具有动态调谐光谱和时间相关性的不可区分的光子对。具体而言,我们在这一表现出拓扑边缘状态的一系列硅环谐振器中意识到双泵自发的四波混合。我们表明,边缘在宽带宽上的线性色散使我们能够调整相关性,因此,通过简单地调整边缘带中的两个泵频率来调整光子之间的量子干扰。此外,我们证明了产生的光子之间的能量时间纠缠。我们还表明,我们的拓扑来源固有地保护了不受制造障碍的保护。我们的结果为使用连续变量的量子信息处理必不可少的挤压光的可扩展和可调来源铺平了道路。
Sources of quantum light, in particular correlated photon pairs that are indistinguishable in all degrees of freedom, are the fundamental resource that enables continuous-variable quantum computation and paradigms such as Gaussian boson sampling. Nanophotonic systems offer a scalable platform for implementing sources of indistinguishable correlated photon pairs. However, such sources have so far relied on the use of a single component, such as a single waveguide or a ring resonator, which offers limited ability to tune the spectral and temporal correlations between photons. Here, we demonstrate the use of a topological photonic system comprising a two-dimensional array of ring resonators to generate indistinguishable photon pairs with dynamically tunable spectral and temporal correlations. Specifically, we realize dual-pump spontaneous four-wave mixing in this array of silicon ring resonators that exhibits topological edge states. We show that the linear dispersion of the edge states over a broad bandwidth allows us to tune the correlations, and therefore, quantum interference between photons by simply tuning the two pump frequencies in the edge band. Furthermore, we demonstrate energy-time entanglement between generated photons. We also show that our topological source is inherently protected against fabrication disorders. Our results pave the way for scalable and tunable sources of squeezed light that are indispensable for quantum information processing using continuous variables.