论文标题
在整体藻类芯片中的宽带双孔产生和极化分裂
Broadband biphoton generation and polarization splitting in a monolithic AlGaAs chip
论文作者
论文摘要
在单个芯片上结合各种高级功能的能力是基于经典和量子光子技术的关键问题。正交极化光子对(量子信息协议中最常用的资源之一)的片上生成和处理是开发可扩展量子光子电路电路的核心挑战。尤其是,缺少频谱宽带两国国家的管理,这是一种资产,吸引了人们越来越关注其以单个空间模式传达大规模量子信息的能力。在这里,我们演示了一个整体的藻类芯片,包括宽带正交极化光子对的产生及其极化分裂; 85%的对在60 nm带宽上通过芯片确定性分离。通过Hong-Ou-Mandel实验评估了芯片输出处的两光子干扰的质量,在同一带宽上显示可见性为75.5%。这些结果是在室温和电信波长中获得的,在结合高二阶非线性,电磁效应和直接带盖的平台中,确认了我们方法的有效性,并代表了在宽带式中用于量子信息处理的小型和易于处理的光子设备迈出的重要一步。
The ability to combine various advanced functionalities on a single chip is a key issue for both classical and quantum photonic-based technologies. On-chip generation and handling of orthogonally polarized photon pairs, one of the most used resource in quantum information protocols, is a central challenge for the development of scalable quantum photonics circuits; in particular, the management of spectrally broadband biphoton states, an asset attracting a growing attention for its capability to convey large-scale quantum information in a single spatial mode, is missing. Here, we demonstrate a monolithic AlGaAs chip including the generation of broadband orthogonally polarized photon pairs and their polarization splitting; 85% of the pairs are deterministically separated by the chip over a 60 nm bandwidth. The quality of the two-photon interference at the chip output is assessed via a Hong-Ou-Mandel experiment displaying a visibility of 75.5 % over the same bandwidth. These results, obtained at room temperature and telecom wavelength, in a platform combining high second-order nonlinearity, electro-optic effect and direct bandgap, confirm the validity of our approach and represent a significant step towards miniaturized and easy-to-handle photonic devices working in the broadband regime for quantum information processing.