Wang Yanan, Lin Qiang, Feng Philip X-L
Opt Express. 2021 Jan 18;29(2):1011-1022. doi: 10.1364/OE.413556.
Photonic quantum information processing and communication demand highly integrated device platforms, which can offer high-fidelity control of quantum states and seamless interface with fiber-optic networks simultaneously. Exploiting the unique quantum emitter characteristics compatible with photonic transduction, combined with the outstanding nonlinear optical properties of silicon carbide (SiC), we propose and numerically investigate a single-crystal cubic SiC-on-insulator (3C-SiCOI) platform toward multi-functional integrated quantum photonic circuit. Benchmarking with the state-of-the-art demonstrations on individual components, we have systematically engineered and optimized device specifications and functions, including state control via cavity quantum electrodynamics and frequency conversion between quantum emission and telecommunication wavelengths, while also considering the manufacturing aspects. This work will provide concrete guidelines and quantitative design considerations for realizing future SiCOI integrated photonic circuitry toward quantum information applications.
光子量子信息处理与通信需要高度集成的器件平台,该平台能够同时提供对量子态的高保真控制以及与光纤网络的无缝接口。利用与光子转导兼容的独特量子发射体特性,并结合碳化硅(SiC)出色的非线性光学特性,我们提出并通过数值研究了一种用于多功能集成量子光子电路的绝缘体上单晶立方SiC(3C-SiCOI)平台。通过与单个组件的最新演示进行基准测试,我们系统地设计并优化了器件规格和功能,包括通过腔量子电动力学进行状态控制以及量子发射与电信波长之间的频率转换,同时还考虑了制造方面的因素。这项工作将为实现面向量子信息应用的未来SiCOI集成光子电路提供具体指导方针和定量设计考量。