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A compact, integrated silicon device for the generation of spectrally filtered, pair-correlated photons

机译:紧凑的集成硅器件,用于生成经光谱滤波的成对相关的光子

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The third-order nonlinearity of silicon gives rise to a spontaneous four-wave mixing process in which correlated photon pairs are generated. Sources based on this effect can be used for quantum computation and cryptography, and can in principle be integrated with standard CMOS fabrication technology and components. However, one of the major challenges is the on-chip demultiplexing of the photons, and in particular the filtering of the pump power, which is many orders of magnitude larger than that of the signal and idler photons. Here, we propose a photonic crystal coupled-cavity system designed so that the coupling of the pump mode to the output channel is strictly zero due to symmetry. We further analyze this effect in the presence of fabrication disorder and find that, even then, a pump suppression of close to 40 dB can be achieved in state-of-the-art systems. Due to the small mode volumes and high quality factors, our system is also expected to have a generation efficiency much higher than in standard micro-ring systems. Those two considerations make a strong case for the integration of our proposed design in future on-chip quantum technologies.
机译:硅的三阶非线性导致自发的四波混合过程,在该过程中会生成相关的光子对。基于这种效应的源可用于量子计算和加密,并且原则上可以与标准CMOS制造技术和组件集成。然而,主要挑战之一是光子的片上多路分解,尤其是泵浦功率的滤波,其比信号和闲置光子的功率大许多数量级。在这里,我们提出了一种光子晶体耦合腔系统,该系统设计成使得由于对称性,泵浦模式到输出通道的耦合严格为零。我们在存在制造混乱的情况下进一步分析了这种影响,并发现,即使如此,在最新的系统中也可以实现接近40 dB的泵抑制。由于模式体积小和质量因素高,我们的系统的发电效率也有望比标准微环系统高得多。这两个考虑因素为将我们建议的设计集成到未来的片上量子技术中提供了有力的依据。

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