Yin Zhenghao, Sugiura Kenta, Takashima Hideaki, Okamoto Ryo, Qiu Feng, Yokoyama Shiyoshi, Takeuchi Shigeki
Opt Express. 2021 Feb 15;29(4):4821-4829. doi: 10.1364/OE.416165.
Frequency entangled photon sources are in high demand in a variety of optical quantum technologies, including quantum key distribution, cluster state quantum computation and quantum metrology. In the recent decade, chip-scale entangled photon sources have been developed using silicon platforms, offering robustness, large scalability and CMOS technology compatibility. Here, we report the generation of frequency correlated photon pairs using a 150-GHz silicon nitride ring cavity. First, the device is characterized for studying the phase matching condition during spontaneous four-wave mixing. Next, we evaluate the joint spectrum intensity of the generated photons and confirm the photon pair generation in a total of 42 correlated frequency mode pairs, corresponding to a bandwidth of 51.25 nm. Finally, the experimental results are analyzed and the joint spectral intensity is quantified in terms of the phase matching condition.
频率纠缠光子源在包括量子密钥分发、簇态量子计算和量子计量学在内的各种光学量子技术中有着很高的需求。在最近十年中,已经利用硅平台开发出了芯片级纠缠光子源,具有鲁棒性、高可扩展性和与CMOS技术的兼容性。在此,我们报告了使用一个150GHz的氮化硅环形腔产生频率关联光子对的情况。首先,对该器件进行表征以研究自发四波混频过程中的相位匹配条件。接下来,我们评估所产生光子的联合谱强度,并确认总共在42个相关频率模式对中产生了光子对,对应带宽为51.25nm。最后,对实验结果进行分析,并根据相位匹配条件对联合谱强度进行量化。